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BMC Complementary and Alternative Medicine logoLink to BMC Complementary and Alternative Medicine
. 2019 Aug 13;19:210. doi: 10.1186/s12906-019-2605-6

An ethnobotanical study of medicinal plants used to treat skin diseases in northern Pakistan

Khafsa Malik 1,2,3,, Mushtaq Ahmad 3,4,, Muhammad Zafar 3, Riaz Ullah 5, Hafiz Majid Mahmood 6, Bushra Parveen 1,2, Neelam Rashid 3, Shazia Sultana 3,4, Syed Nasar Shah 3, Lubna 3
PMCID: PMC6693210  PMID: 31409400

Abstract

Background

Skin diseases are a major health concern especially in association with human immune deficiency syndrome and acquired an immune deficiency. The aim of this study was to document the ethnomedicinal information of plants used to treat skin diseases in Northern Pakistan. This is the first quantitative ethnobotanical study of therapeutic herbs utilized by the indigenous people of Northern Pakistan for skin diseases.

Methods

Interviews were taken to obtain information from 180 participants. Quantitative methods including fidelity level (FL), Frequency of citation (FC), Use-value (UV), Jaccard indices (JI), Family importance value (FIV), Relative frequency of citation (RFC) and Chi-square test were applied. Medicinal plants uses are also compared with 50 national and international publications.

Results

In this study, we recorded 106 plant species belonged to 56 floral families for treatment of skin ailments. The dominant life form reported was herb while the preferred method of utilization was powder, along with leaf as the most used plant part. RFC ranges from 0.07 to 0.25% whereas the highest FIV was recorded for family Pteridaceae. FL values range from 36.8 to 100%. The study reported 88% of new plant reports for the treatment of skin diseases.

Conclusion

The present study revealed the importance of several plants used to treat skin diseases by the local communities of Northern Pakistan. The available literature supported the evidence of plant dermatological properties. Plants having high UV and RFC can be considered for further scientific analysis. There is dire need to create awareness among local, government and scientific communities for the preservation of medicinal species and ethnomedicinal knowledge in Northern Pakistan.

Electronic supplementary material

The online version of this article (10.1186/s12906-019-2605-6) contains supplementary material, which is available to authorized users.

Keywords: Skin diseases, Medicinal plant, Northern Pakistan, Traditional, Ethnomedicines

Background

Skin diseases present a major health concern worldwide [1]. Skin problems significantly affect the quality of health and difficult to treat due to persistence [2]. The skin is an external organ covering the body and serves many important functions including percutaneous absorption, organ protection, fluid preservation, body shape maintenance, temperature regulation and eliminating toxins from the body by sweat excretion [1]. The etiology of skin diseases display a close connection between an individual’s health and socio-cultural environment [3]. Skin diseases affect people of all age groups and gender [4]. Skin ailments or infectious dermatological dermatological diseases are particularly present in tropical areas of Globe [5]. Skin diseases constitute about 34% of all the ailments and supposed to be the most common disease among rural people [6]. Skin diseases have gained attention in recent years due to the association with AIDS/HIV. Greater than 90% of infectious persons of HIV developed mucosal and skin problems at certain phase of disease [1]. Skin ailments such as boils, itching, ringworm, skin disorders, leprosy, wound, dermatitis, eczema, scabies, skin allergy swelling and psoriasis are caused by a variety of microorganisms [7]. In previous reports, it was found that wound healing, eczema, dermatitis, fungal diseases, pyoderma, scabies, and skin allergies are the largest group of skin diseases that occur in most of the countries. Most of the plants used for treating skin disorders possibly have other additional properties like anti-inflammatory, anti-microbial, anti-viral, cicatrizant, hemostatic, analgesic effects that require pharmacological confirmation [8]. In literature, various plants have been reported to be used against skin infections like wound healing, scabies, swellings, boils, etc. [916].

In Pakistan, the number of patients suffering from skin diseases increases every year. The majority suffer from psoriasis, followed by pigment disorder, eczema, urticaria and fungal infection [17]. Climatic conditions like hot and humid weather intensify the prevalence of skin disorders. Although the mortality for skin infection is relatively low, the infection affects the quality of life. Modern skin therapies depend on the cause of the ailment. A skin disease caused by fungal and bacterial infection is medicated using antibiotics such as tolnaftate, clotrimazole, and gentamicin. It is believed that modern therapies have many disadvantages like antibiotic resistance, allergic and adverse reactions in some patients [18]. Modern medicines are very expensive with costly treatments so an alternative approach such as herbal medication in practiced.

Ethno-medicinal studies showed that herbal medicine is an alternative therapy for treatment and control of skin ailments [19]. Herbal anti-skin medicines have many useful properties including low side effects and cost treatment with high significant efficacy [20, 21]. Medicinal flora have shown a pivotal part in management of dermatological conditions [11, 22], particularly communities in developing countries local communities depend on traditional medicine for their health care [23]. The World Health Organization has a deep interest in the documentation of medicinal plant knowledge from from different areas of globe [24]. Currently, the Ministry of Public Health of Pakistan is promoting the usage of therapeutic herbs in health maintenance system [25].

In Pakistan, few previous reports exist the usage of therapeutic flora in skin care [1]. Therapeutic flora usage for treatment of skin ailments are documented in the literature [26], but, no specific study exists treatment of skin diseases. Various medicinal plants are also reported worldwide usage for the cure of skin disorders [7, 2730]. The ethnobotanical literature on medicinal usage of flora for various ailments in Pakistan were mentioned in literature [3137], but no systematic ethnomedicinal study has specifically focused on skin problems in the tribal areas of Northern Pakistan.

The objective of this research work is to document and examine the diversity of therapeutic flora used for treating the skin diseases in Northern Pakistan. This research will facilitate future scientific authentication through antimicrobial, pharmacological and phytochemical studies.

Methods

Description of study area

Northern Pakistan is home to the world's largest peaks and high mountain ranges i.e., Karakorum, Alai Ranges, Kunlun, Hindukush and Tien Shan [38]. Its topography differs from rock parts in North to green plains and forest in South. These areas are rich in floral variation of therapeutic plant species [39]. This area includes Hazara division, Swat valley, Mansehra, Kaghan and some tribal areas of Northern parts (Fig.1). The area is located at 72°35’to - 73°31′E and 33°50′-to 34°23′ N. The province borders Afghanistan to North Western side, Kashmir to East Punjab Islamabad capital territory to East and FATA to South. The average temperature recorded in the past was minimum in January as 1.7 °C while the mean maximum was 32.41 °C in June [40]. The average annual rainfall is about 1125 mm. The major tribes residing in the area include Khattak, Yusufzai, Marwat, Shinwari, Afridi, Orakzai, Mahsud, Mohmand, Abbassies, Wazir, Tareen, Mashwani, Jadoon, Tanolis, Awans, Sardars, Sheikhs and Qureshi [1]. Northern Pakistan is a hilly area and the cultivated land is not enough for sustenance [41]. Medicinal plant collection and other non-timber forest products provide an additional source of income (12%), while daily salaries and wages constitute 20%, transmittals from other areas of Pakistan and overseas (17%), and other occupations (10%) [41]. About 80% population in Pakistan is rural households and has easy access to medicinal plants.

Fig. 1.

Fig. 1

Map of the study area -Northern Pakistan (www.globalsecurity.org)

Ethical compliance

The present study was carefully designed with strict compliance of bio-ethics and approved by the Institutional Bioethics Committee (IBC) of Quaid-i-Azam University, Islamabad, Pakistan under the approval No PT-5695. The rules for plant collection and identification were followed according to National Biodiversity Action Plan as per the guidelines of Herbarium of Pakistan (ISL), Quaid-i-Azam University, Islamabad, Pakistan. Prior to data collection, a brief group discussion was held with the participants for agreement, to tell the objectives of research and to guarantee the safety of indigenous knowledge. These practices clear the aim of research and develop confidence in participants so they give reliable knowledge without any hesitation. Initially, 200 participants were selected of them were but among them, 20 were hesitant in providing knowledge leaving a total of 180 participants for data collection. While data documentation, all participants were contacted 3 times for the authentication of the knowledge given by informants. Any deviance of the informants idea from authentic knowledge given, the information was excluded and regarded inapplicable. The data quality was ensured through proper training of data collectors, pointing out missing information, duplication of the material, and careful analysis. The data quality was ensured through proper training of data collectors, pointing out missing information, duplication of the material, and careful analysis. The few plants in the MS are listed on the IUCN red list such as Taxus wallichiana (plant #104) is endangered, Colubrina oppositifolia (#84) is critical, Aconitum chasmanthum (#79) is critical and Plantago lanceolata (#69) is vulnerable. All plants listed in this study are authorized by the biodiversity action plan and duly authenticate by ethical committee of Quaid-i-Azam University, Islamabad and then included in the MS. The native communities of the area have knowledge about sustainable use of these plants and use of these plants with care (criteria of IUCN) so that they don’t get vanished and are save for next generation.

Field study and data collection

This research work focused on the use of traditional plant resources with specific reference to the treatment of skin ailments. Fieldwork was performed between April 2015 to August 2015. Collectively, 180 participants were interviewed after receiving their prior informed consent. Data was collected from native indigenous health practitioners (THPs) and local participants (female and males of altered groups of age, experiences and education levels). During field surveys, face to face interviews and semi-structured interviews were also conducted. Guided field walks were also conducted [42]. The questionnaire used for data collection includes two parts, (i) part dealing with the demographic data of participants, and (ii) part focusing on information about plants´ local name, mode of administration, preparation and part of the plant used against skin diseases. Documentation of data while field survey was evaluated and organized by usage of quantitative analysis. In addition, data was compared with previously published research articles on ethnomedicinal uses of plants to validate the plants with higher medicinal values for skin diseases.

Collection identification and preservation

In the current study, therapeutic flora documented by participants was identified by their common names [43]. The plant specimens were further authenticated by a Plant Taxonomist, Professor Mir Ajab Khan (Ph.D. in Plant Systematics) at the Herbarium of Pakistan (ISL), QAU Islamabad, Pakistan. All the plants species were further authenticated through available literature [42] and compared  with herbarium specimens. In addition, some plants used by the local healers were photographed. Voucher plant specimens were collected in duplicate. Herbarium specimens were deposited in Herbarium of Pakistan (ISL, Registered at Index Herbarium http://sweetgum.nybg.org/science/ih/) and voucher specimens are presented in.

Quantitative data analysis

Use value (UV)

Use value is calculated to assess all probable usage of plant species. UV of plants gives a quantitative analysis for plant citation. UV tells the relative importance of plant flora recognized locally. UV was analysed according to [44].

UV=u/N

Where u is the total participants stating various uses of a plant and N is whole number of participants. UV is usually (1) if the number of usages is greater, and (0) if the usage report for plants species is less. UV not deliver data on multiple or single usage of plant flora is considerably low. UV does not deliver any data on the single or multiple uses of plant species.

Frequency of citation (FC) and relative frequency of citation (RFC)

FC is used for evaluating the most prefered plants or more used plant species. RFC was analysed to intricate the knowledge of traditional flora about usage of therapeutic flora in the study site.

RFC=FC/N0<RFC<1

Where RFC is denoted by relative frequency citation, FC (Frequency of Citation) is the number of participants who stated the plant flora and N is whole number of informants [34].

Fidelity level (FL)

To analyse most prefered plant usage for the cure of a specific disease, we used (FL) index adopted by [37]. FFL indicates the importance of one species over other, to cure specific diseases. Fidelity level shows the percentage of participants who reported the use of specific plant species for a particular disease (Skin disease).

FL%=NP/N×100

Where, Np is the number of participants that declare the usage of species for definite disease, and N is total participants that use plants as a medicines for the treatment of any given ailment [45].

Jaccard index (JI)

Jaccard index (JI) is evaluated by comparison of formarly published studies from local, regional and global level by analysing the percentage of cited plant species and medicinal usage, by using the following formula:

JI=cmultiply100/a+bc

where “a” is the number of species of area A, “b” is number of species of area B, and “c” is number of species common in A and B [46].

Chi-square test

The knowledge of medicinal species distributed between male and female participants between two age categories (36–46 and > 60 years of age) was comparatively analyzed by using Chi-square.

Results

Socio-demographic characteristics of participants

Collectively 180 participants were selected from several regions of Northern Pakistan. The majority of professional healers were males (61%). Based on age, the participants were divided into five groups (36–46 (11%), 47–57 (19%), 58–68 (24%), 69–79 (34%) and above 80 years (12%). Participants constitute 24 students, 41 herbalists, 32 physicians, 12 retirees, 46 housewives, 12 professionals, and 13 others. A large number (44%) of local healers also used allopathic medicines. Regarding education, 30% of the participants were illiterate, 35% of the traditional healers had attended primary school, 18% secondary education level, 9% tertiary education and only 8% of participants had attended universities. The majority of professional healers (43%) in the study area were married, followed by single (37%), widowed (16%) and 4% divorced Most of the participants were living in rural areas (88%) and only 12% living in urban areas (Table 1).

Table 1.

Demographic data of participants

Parameters Participants (N) N (%)
Gender Female 70 39
Male 110 61
Age 36–46 20 11
47–57 35 19
57–67 43 24
68–78 62 34
80> 20 12
Education No formal education 55 30
Primary 63 35
Secondary 32 18
Tertiary 16 9
Others 14 8
Collaboration with modern medicine Collaborative 80 44
Non collaborative 100 56
Occupation Student 24 13
Herbalists 41 23
Physician 32 18
Retired 12 7
Housewife 46 25
Professional 12 7
Others 13 7
Residence Urban 22 12
Rural 158 88
Marital status Single 66 37
Married 78 43
Widowed 29 16
Divorced 7 4

Diversity of medicinal plants used

Therapeutic flora, used to cure skin diseases in Northern Pakistan are documented in Table 2. The study reported 106 medicinal plant species. The main growth habit of the plant flora was herbs 62%, followed by shrubs (20%) and trees (18%). The plants belonged to 56 families. Asteraceae (10 species) and Lamiaceae (7 species) represent the most dominant family in this study site (Fig. 2). The other important families in the study included Polygonaceae (6 species), then Ranunculaceae and Rosaceae (5 species each). The least species (1%) were observed in 37 families (Fig. 2).

Table 2.

Medicinal plants used for skin diseases in Northern Pakistan

Family / Scientific name / coll. # Vernacular Name Habit Plant Part used Mode of utilization Disease treated Preparation FC RFC UV FL Comparison
Acanthaceae Justicia adhatoda L. LI 58 Behkar Shrub Leaf Decoction, powder Wound healing Leaf are directly applied on wounds 23 0.13 0.043 73.91 1 □, 2 □, 3 ■, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Amaryllidaceae Allium cepa L. □□LI 6 Piaz Herb Bulb Juice Wound healing Juice of plant is given 3 cups daily 29 0.16 0.034 79.31 1 ■, 2 □, 3 ■, 4 □, 5 ■, 6 ■, 7 □, 8 □, 9 ■, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 ■, 18 ●, 19□, 20 □, 21□, 22 □, 23 □, 24 ●, 25 □, 26 □, 27, 29 □, 30 □, 31 □, 32 □, 33 ■, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 ■, 50 □
Amaryllidaceae Allium sativum L LI 7 Lehsan Herb Leaf Paste Pimples Paste of plant is added in different a edibles for pimples 36 0.20 0.028 91.67 1 ●, 2 □, 3 ■, 4 □, 5 □, 6 ●, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 ●, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 ■, 50 □
Apiaceae Anethum graveolens L. LI 10 Soye Herb Whole plant Decoction pimples 3 cups of decoction at two time is given twice a week 20 0.11 0.050 75.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Apiaceae Coriandrum sativum L. LI 33 Dhania Herb Whole plant Raw, cooked Pimples Whole plant as it is or add in different dishes while cooking to cure pimples 32 0.18 0.031 87.50 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 ●, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Apiaceae Ferula foetida (Bunge) Regel. LI 47 Herb Latex Poultice Wound healing Its poultice is used for wound cure 40 0.22 0.025 92.50 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Apiaceae Pleurospermum brunonis Benth. ex C.B.Clarke LI 80 Spairkai Leaf Powder Skin problems Crushed leaves are mixed in oil and applied on the skin to prevent infections. 28 0.16 0.036 85.71 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 ■, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Apocynaceae Calotropis procera (Aiton) Dryand. LI 24 Desi aak Herb Flower and branches Decoction inflammation The decoction of flowers with honey in two ounce is given once a day 18 0.10 0.056 61.11 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 ●, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 ●, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 ■, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Apocynaceae Carissa spinarum L. Haines LI 22 Granda Shrub Root, bark, Leaf Paste Wound healing, boil The paste prepared from bark and root is applied on wounds for healing 25 0.14 0.080 80.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Apocynaceae Rauvolfia serpentina L. LI 84 Tilian Shrub Leaf Extract Skin problem Extract or paste prepared from flower and leaf is used to cure anemia, skin diseases and blood purification 22 0.12 0.045 86.36 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Asteraceae Anaphalis margaritacea (L.) Benth. & Hook.f. LI8 Herb Whole plant, flowers Paste Skin burn Poultice made of whole plant is useful for skin burns 32 0.18 0.031 81.25 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Asteraceae Artemisia vulgaris L. LI 12 Jaokay Herb Leaf Powders boils Dried leaves are grinded to fine powder and taken 3 spoons in the early morning. 45 0.25 0.022 80.00 1 ■, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 ■, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Asteraceae Gerbera gossypina (Royle) Beauverd LI 50 Kofe Herb Roots Paste Wound healing Paste prepared from roots is applied to newly cut wounds to control the bleeding. 39 0.22 0.026 69.23 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Asteraceae Gnaphalium affine D.Don LI 51 Jangli dodal Herb Leaf Decoction Skin problems A decoction made from leaves is used to cure sore throat, influenza and weeping pruritus of the skin. 12 0.07 0.083 50.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Asteraceae Launaea nudicaulis (L.) Hook.f. LI 60/ Herb Leaf Powder Wound healing Dried leaves are powdered and taken with water twice a day. 19 0.11 0.053 78.95 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Asteraceae Saussurea lappa (Decne.) Sch.Bip. LI 93 Herb Roots Extract Skin problem Tonic, carminative, used in cholera and in chronic skin problems 39 0.22 0.026 76.92 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Asteraceae Senecio chrysanthemoides DC LI 94 Herb Leaf Oil Skin problem Oil is used for treatment 36 0.20 0.056 80.56 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Asteraceae Sonchus asper (L.) Hill LI 96 Herb Flower, Leaf Powder Skin problem Dried flowers and leaves are powdered and taken for the treatment of rheumatism. 26 0.14 0.038 100.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Asteraceae Taraxacum officinale aggr. F.H. Wigg. LI 99 Haand Herb Flowers, Leaf, roots Tea Pimples The tea prepared from flowers is used internally to cure pimples and is used cosmetically to clear the skin 35 0.19 0.029 94.29 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □

Asteraceae

Tussilago farfara L. LI 103

Bann Hulla Flowers Poultice Skin problems A poultice made from flowers is used for the treatment of a range of skin disorders including ulcers, sores, and Inflammations. 27 0.15 0.037 77.78 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Balsaminaceae Impatien edgeworthii Hook. f LI 54 Buntil Herb Whole plant Paste Skin burn The plant paste is used externally for burns 33 0.18 0.030 81.82 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Berberidaceae Berberis lycium Royle LI 15 Sumblu/ komal Shrub Leaf, root, flowers Paste Wound healing The paste prepared from leaves and roots is externally applied on wounds. 21 0.12 0.048 80.95 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 ●, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 ■, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Boraginaceae Hackelia americana (A.Gray) Fernald LI 52 Neelaan Herb Flowers Wounds The flowers are good expectorant, used for wound healing and treating tumors. Flowers are used to cure coughs, sores, and swellings. 28 0.16 0.036 78.57 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Boraginaceae Onosma hispida Wall. ex G. LI 71 Lal jari Tree Leaf, Flower, Roots Poultice Skin burn Leaf poultice are applied on the Burnt wounds with ghee/ oil. 33 0.18 0.030 72.73 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Brassicaceae Brassica juncea (L.) Czern. LI 20 Sharsham Herb Leaf Cooked Wound healing Leaf are cooked and used for wound healing 21 0.12 0.048 66.67 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Buxaceae Buxus papillosa C.K. Schneid. LI 21 Angaroo Shrub Leaf Oil Skin problems Oil of Leaf are applied on skin 29 0.16 0.034 79.31 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 ■, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 ■, 33 ■, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Cannabaceae Cannabis sativa L LI 26 Bhang Shrub Flower, fruit, Leaf Juice, powder Dandruff, wounds healing

The fresh juice of Leaf and flowers are used for removing dandruff Fr.om the head.

Powder of the Leaf and fruits are beneficial for dressing fresh wounds

17 0.09 0.118 94.12 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 ■, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 ●, 46 □, 47 □, 48 □, 49 □, 50 □
Capparaceae Capparis decidua (Forssk.) Edgew. LI 27 Keera Tree Seeds Decoction Wound healing Decoction prepared from seeds  is taken 3 cups daily to cure wounds. 24 0.13 0.042 91.67 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Caprifoliaceae Valeriana jatamansi Jones ex Roxb. LI 105 Murma Roots Juice Pimples The root juice is used to cure hysteria, pimples, rheumatism, nausea and cholera 22 0.12 0.045 86.36 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Caryophyllaceae Cerastium fontanum subsp. vulgare (Hartm.) Greuter & Burdet, LI 29 Bark Powder Skin problem Powdered bark along with milk is taken orally at morning to treat skin problems. 38 0.21 0.026 89.47 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Commelinaceae Commelina benghalensis L LI 32 Chora Herb Leaf, Fruit Raw Wound infection Whole fruit is used to treat wounds 33 0.18 0.030 84.85 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 ■, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 ●, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Convolvulaceae Cuscta reflexa Roxb. LI 35 Neeltharee Tree Roots Decoction Skin problems Crushed roots are boiled in water and some sugar is added. 28 0.16 0.036 92.86 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Cucurbitaceae Cucumis melo L. LI 36 Tori Herb Fruit Infusion Skin burn Infusion of fruits used to cure skin burns 26 0.14 0.038 92.31 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 ■, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Cucurbitaceae Lagenaria siceraria (Molina) Standl. LI 59 Gya Kadoo Herb Leaf, fruit Raw Wound healing, skin burn Eaten daily as tonic 28 0.16 0.071 57.14 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Cucurbitaceae Momordica charantia L. LI 67 Kareela Herb Flowers, roots Paste Wound healing Paste of herb is applied for wound healing 19 0.11 0.053 94.74 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 ■, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 ■, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Cupressaceae Juniperus communis L. LI 56 Gojar Tree Berries Decoction Skin problem An ointment of berries are used in skin problem 25 0.14 0.040 76.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Cupressaceae Juniperus excelsa M. Bieb. LI 57 Pencil Cedar Tree Bark Powder Skin Problem Powder of the bark is used in certain skin infection areas 11 0.06 0.091 72.73 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Cyperaceae Cyperus difformis L LI 38 Motkopragha Herb Whole plant Paste Skin problems Paste prepared from whole plants is applied externally to cure skin infections. 14 0.08 0.071 71.43 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Elaeagnaceae Hippophae rhamnoides L. LI 53 Tree Fruit, seeds Decoction Skin problems A decoction of the fruits are used for skin problems 37 0.21 0.027 83.78 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 ■, 29 □, 30 □, 31 □, 32 □, 33 ●, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Equisetaceae Equisetum arvense L. LI 43 Chew Shina Herb Whole Plant Powder Skin problems, allergy Plant material are mixed with different herbs and used on skin troubles and allergy 36 0.20 0.056 86.11 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 ●, 50 □
Euphorbiaceae Euphorbia helioscopia L. LI 44 Cat milk Herb Leaf powder Wound healing Dried leaves are mixed in water and taken orally for 4–5 days. 22 0.12 0.045 81.82 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Fabaceae Butea monosperma (Lam.) Kuntze LI 14 Chichra Tree Root Decoction Skin problem Root decoction is used in skin diseases 36 0.20 0.028 94.44 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 ●, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 ●, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Fabaceae Delbergia sissoo L. LI 41 Shesham Tree Leaf Decoction, infusion Skin problem, abscesses Leaves are dried, mixed with water and taken orally for 4–5 days. 40 0.22 0.050 95.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Fabaceae Pisum sativum L. LI 77 Matar Herb Seed Extract Skin burn Fresh seeds are milled then extract drops being used. 21 0.12 0.143 80.95 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Fabaceae Trigonella foenum-graecum L LI 102 Jangli Herb Leaf, flowers Decoction Wound healing Leaf and flowers are boiled in water used for cure wounds 39 0.22 0.026 82.05 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 ■, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 ■, 29 □, 30 □, 31 □, 32 □, 33 ●, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Gentianaceae Swertia abyssinica Hochst. LI 97 Chratia Shrub Flower, Leaf Paste Skin problems Plant is crushed into paste and applied on skin. 17 0.09 0.059 94.12 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Lamiaceae Ajuga integrifolia Buch-Ham-ex D. Don LI 5 Bootei Herb Leaf Powder Boils One table spoon of powdered leaves is taken for boils treatment on daily basis. 22 0.12 0.045 81.82 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Lamiaceae Isodon rugosus (Wall. ex Benth.) LI 55 Sperkay Shrub Leaf Powder Wound healing Powdered leaves are taken 3 times a day after each meal. 20 0.11 0.050 90.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □

Lamiaceae

Micromeria biflora (Buch.-Ham. ex D.Don) Benth LI 66

Narayshamakay Herb Flowers, Leaf, roots Paste Wound healing Root Leaf and flower paste is used for poultice making to treat wounds. 15 0.08 0.067 60.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Lamiaceae Nepeta hindostana (B.Heyne ex Roth) Haines. LI 68 Indian catnip Herb Leaf Extract Skin problems The leaf extract is prepared and one small teaspoon is taken twice a day. 21 0.12 0.048 80.95 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Lamiaceae Rydingia limbata (Benth.) Scheen & V.A. Albert LI 90 Ghawareja Shrub Leaf Extract Skin problem Leaves extract is taken orally to cure mouth ulcers and skin disorders. 23 0.13 0.043 100.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Lamiaceae Salvia moorcroftiana wall. ex Benth LI 92 Khaar dug, Zarshal, Herb Leaf Poultice Wound healing, skin itching Poultice of the Leaf are used for external skin itching 17 0.09 0.059 64.71 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Lamiaceae Teucrium stocksianum Boiss. LI 101 Kwandi Bootay Herb Leaf Decoction Wound healing Decoction of Leaf is employed in wound healing. 25 0.14 0.040 88.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Loranthaceae Loranthus pulverulentus Wall LI 62 Parwikh Shrub Leaf Powder Wound healing Leaf powder is used for wound healing. 32 0.18 0.031 71.88 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Lythraceae Lawsonia inermis L. LI 61 Mhendi Shrub Leaves Infusion Skin burn, boils Crushed leaves are dissolved in water and infusion made is taken for 4–5 days 39 0.22 0.051 61.54 1 ■, 2 ●, 3 ■, 4 □, 5 □, 6 □, 7 □, 8 □, 9 ■, 10 ●, 11 □, 12 □, 13 □, 14 □, 15 ■, 16 □, 17 □, 18 ■, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 ■, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 ●, 50 □
Malvaceae Abelmoschus esculentus (L.) Moench LI 1 Bhindi Herb Seeds Tea pimples Seeds are boil in water and make tea which is used in pimples cure 29 0.16 0.034 72.41 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Meliaceae Melia azadarach L. LI 65 Draik Tree Leaf Powder Pimples, Inflammation Three teaspoons of grinded leaves are mixed in three cups of hot water and used twice a day. 27 0.15 0.074 74.07 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Myrsinaceae Myrsine africana L. LI 63/ Gugal Shrub Leaf Skin problems Leaves are used to cure cough, cold, flue and skin disorders. 35 0.19 0.029 91.43 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Nitrariaceae Peganum harmala L. LI 72 Isman Herb Leaf Extract Skin problem The aqueous extract of leaves is used thrice a day to treat skin problems. 35 0.19 0.029 65.71 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 ■, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 ■, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Nyctaginaceae Boerrehavia diffusa L. LI 19/ Snnati Herb Leaf Infusion abscesses Leaves are crushed and added in water, used to cure skin abscission. 27 0.15 0.037 81.48 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Oleaceae Olea europaea subsp. cuspidata (Wall. & G.Don) Cif LI 70 Ghawareja Shrub Leaf,seeds Tea Skin problems Leaves are boiled and the tea is taken orally to cure mouth ulcers and skin disorders. 31 0.17 0.032 80.65 1 ■, 2 □, 3 □, 4 □, 5 □, 6 □, 7 ■, 8 ●, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 ●, 29 □, 30 □, 31 □, 32 ●, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 ■, 50 □
Papaveraceae Corydalis govaniana Wall. LI 34 Bhutyata Herb Roots Powder Skin burn

The powdered root is effective as antiperiodic,

appetizer, diuretic and skin, tonic.

34 0.19 0.029 91.18 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 ■, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Phytolaceae Phytolacea letsenia L. LI 73 Amlok Shrub Flower, roots Powder Wound healing Shade dried flowers are powdered and mixed with sugar, is recommended for wound healing. 37 0.21 0.027 83.78 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Pinaceae Cedrus deodara (Roxb. ex D.Don). LI 28 Deodar Tree Roots Extracts Skin problems Oil extracted from roots is used for skin disorders. 36 0.20 0.028 86.11 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Pinaceae Pinus roxburgii Sarg LI 75/ Cheerh Tree Seed, stem Juice Skin problems Juice of Seed is given 3 cups daily 16 0.09 0.063 56.25 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Pinaceae Pinus wallichiana A.B. Jacks. LI 76 Tree Seed Powder Wound infection The seeds are grinded to flour and few grains of sugar are mixed and taken with tea in the morning. 18 0.10 0.056 44.44 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Plantaginaceae Picrorhiza kurrooa Royle. ex Benth. LI 74 Kutakisafed Herb Roots Burning sensations It is useful in the treatment of burning sensation, 39 0.22 0.026 76.92 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Plantaginaceae Plantago major L. LI 78 Achar Herb Seed Poultice Skin problems, wound healing, boils

Polutice of fresh seeds is wrapped around

the boils, after three day the pus drains out and the heals

up within a week.

31 0.17 0.032 83.87 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 ■, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 ■, 29 □, 30 □, 31 □, 32 □, 33 □□□, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Plantaginaceae Plantago lanceolata L. LI 79 Herb Seed, Leaf Poultice Wounds healing

Leaf are applied to

Wounds.

33 0.18 0.030 75.76 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Poaceae Cynodon dactylon (L.) Pers. LI 37 Kabalor Herb Whole plants Powder Wound healing, skin problems Whole plant is grinded with water to cure skin problem 16 0.09 0.125 68.75 1 □, 2 □, 3 ■, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 ●, 10 ■, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 ●, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Polygonaceae Fagopyrum acutatum (Lehm.) Mansf. ex K.Hammer LI 45 Buck wheat Herb Leaf Powder Wound healing Powder Leaf mixed with oil is applied over area 26 0.14 0.038 80.77 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Polygonaceae Polygonum nepalense Meissn. LI 81 Hulla Herb Leaf, Seeds Paste Wounds A poultice prepared from the roots is used on fresh wounds. 30 0.17 0.033 76.67 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Polygonaceae Rumex abyssinicus Jacq. LI 87 Sa-shing Roots Decoction Skin problem Decoction of roots is taken with Aloe vera to treat skin problems 34 0.19 0.029 76.47 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Polygonaceae Rumex dissectus H. Lév. LI 88 Khatimmer Herb Leaf, roots Extract, powder Wound infections Fresh Leaf extracts are crushed and used to stop wounds bleeding 29 0.16 0.034 86.21 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Polygonaceae Rumex dentatus L. LI 89 Shalkhay Herbs Leaf Powder Boils 2–3 leaves are powdered. Tea made by adding 4-5 grams of powder in 2 cups of water. This can be taken for treating boils. 27 0.15 0.037 88.89 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Polygonaceae Fagopyrum tataricum (L.) Gaertn. LI 46 Bro Kho-Bro Herb Leaf. seeds Paste Skin problem Paste is applied on skin effected areas 35 0.19 0.029 91.43 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Primulaceae Androsace rotundifolia Lehm. ex Roem. & Schult. LI 9 Marcholla Herb Leaf Extracts Skin problem Aqueous leaf extract is prepared and used in treating skin infections. 22 0.12 0.045 72.73 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Pteridaceae Adiantum venustum D. Don LI 4 Pata, kakwa Herb Leaf Paste Wound healing The rhizome paste is applied to heal cuts and wounds. 48 0.27 0.021 91.67 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20□, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Ranunculaceae Aconitum chasmanthum Stapf ex Holmes LI 2 Bishmoulo (Shina) Mori Herb Leaf Decoction Mumps, measles Decoction of the Leaf are given for 2 weeks to cure diseases 44 0.24 0.023 88.64 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Ranunculaceae Aconitum delphinifolium DC. LI 3 Booma Herb Leaf Decoction Wound healing, boils Dried leaves are boiled in water to make decoction and is taken on daily basis to cure boils. 31 0.17 0.065 90.32 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Ranunculaceae Aquilegia pubiflora Wall. ex Royle LI 13 Koo-kuk Herb Leaf, floral parts Paste Skin burns and wound healing Fresh plant parts are crushed in water to prepare paste and applied on affected areas to avoid pain from burns and wounds. 39 0.22 0.051 79.49 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 ■, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 ■, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Ranunculaceae Caltha alba Cambess LI 25/ Neel kanth Leaf Extract Skin problems Leaf extract is used for cleaning skin lesions, sores and skin diseases. 21 0.12 0.048 80.95 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Ranunculaceae Nigella sativa L. LI 69 Kaloongee Herb Seed, Leaf Wound healing Latex is effective for rheumatic pain. 26 0.14 0.038 61.54 1 ■, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 ■, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Rhamnaceae Colubrina oppositifolia Brongn. ex H. Mann LI 23 Lansa Shrub Leaf Paste Wound healing, Skin problem Leaf Paste are applied on wound and bruises 32 0.18 0.063 81.25 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Rosaceae Malus pumila Mill LI 64 Manra Tree Leaf Raw, Juice Boils Juice extracted from the Leafare used in boils 28 0.16 0.071 75.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Rosaceae Prunus armeniaca L. LI 82 Apricot Tree Fruit Skin problem 32 0.18 0.031 96.88 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 ●, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Rosaceae Prunus persica (L.) Batsch LI 83 Aru Tree Fruit and Leaf Skin problems 18 0.10 0.056 55.56 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 ●, 47 □, 48 □, 49 □, 50 □
Rosaceae Rosa chinensis Jacq LI 85 Gulab Shrub Flower Raw Skin problem Fruit is used to reduce pain 40 0.22 0.050 95.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □

Rosaceae

Rubus abchaziensis Sudre LI 86

Akhray, Karwarra Shrub Flowers, roots Decoction Wound healing, boils Fruit decoction is given for 2 week to cure wounds and boils. 36 0.20 0.028 75.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Rubiaceae Galium abaujense Borbás LI 48 Khrrhatani Herb Leaf Poultice Wound healing Poultice prepared from leaves is applied on wounds and used as an antiseptic. 19 0.11 0.053 36.84 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Rubiaceae Gallium aparine L. LI 49 Loothar Herb Leaf Poultice Wound healing

Leaf are

externally used on wounds as antiseptic

21 0.12 0.048 80.95 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Rutaceae Zanthoxylum armatum DC LI 11 Dumbara Shrubs Leaf Raw, paste Skin burn Fresh Leaf paste are used to cure skin burn 19 0.11 0.053 57.89 1 □, 2 □, 3 □, 4 □, 5 ●, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Rutaceae Citrus medica L. LI 30 Lemmon Tree Fruit Juice skin irritation Juice of fruit is applied on skin to reduce skin irritation 14 0.08 0.071 78.57 1 □, 2 □, 3 ●, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Rutaceae Citrus sinensis L. LI 31 Orange Tree Fruit Raw Pimples Fruit as a whole is used to reduce pimples 20 0.11 0.050 80.00 1 ■, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 ●, 50 □
Salicaceae Salix babylonica L. LI 91 Bainsa Tree Leaf, roots Extract Skin cleanser The extract of Leaf and root are taken for skin cleanser 20 0.11 0.100 60.00 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Sapindaceae Dodonaea viscosa (L.) Jacq LI 42 Ghwaraskay, Santha Shrub Leaf Powders Skin burn, wound healing Grinded leaves are mixed in water to make juice and used for skin problems. 33 0.18 0.061 84.85 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Saxifragaceae Bergenia ciliata (Haw.) Sternb LI 16 Batweyaa Bark Paste Wound healing Paste of Bark is antibacterial and is used to heal up wounds and cuts. 18 0.10 0.056 61.11 1 □, 2 □, 3 □, 4 □, 5 ■, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 ■, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Saxifragaceae Bergenia ligulata Engl. LI 17 ZakamJat Herb Whole plant Extracts Wound healing, boil Extract of whole dried plant is mixed in hot water and applied externally on, boil, cuts and wounds. 17 0.09 0.118 76.47 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Saxifragaceae Bergenia stracheyi Hook.f. & Thomson) Engl LI 18 Zakham-i- hayat Herb Leaf, flower Powder Sun strokes, wound healing Powder of Leaf and flowers are mixed with butter and sun blocking cream. 34 0.19 0.059 85.29 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 ●, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Scrophulariaceae Verbascum thapsus L. LI 106 Gadikand Aerial part Infusion Pimples, skin problem Aerial plants are crushed, mixed in water and taken for 4–5 days to cure skin problems. 38 0.21 0.053 76.32 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Solanaceae Datura stramonium L. LI 40 Dhatura Shrub Seeds, Leaf Paste Boils Leaf are applied on boils 21 0.12 0.048 71.43 1 □, 2 □, 3 ●, 4 ●, 5 ■, 6 □, 7 ●, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Solanaceae Solanum virginianum L. LI 95 Kandiari Fruits, Leaf Decoction, extract Skin problem, swelling of skin Fruits are boiled and prepared decoction mixed in water is used for taking bath to cure skin problems, The fruits and leaves extract are applied on body swellings to get relief. 28 0.16 0.036 96.43 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Tamaricaceae Tamarix aphylla (L.) H. Karst. LI 98 Ghaz Herb Leaf Decoction Wounds The decoction of the plant is given to the patient for 1 week 12 0.07 0.083 58.33 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Taxaceae Taxus wallichiana Zucc. LI 100 Bermi Fruits Extracts Skin problems Extract of the fruits obtained and is used daily 29 0.16 0.034 72.41 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 □, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Thymelaeaceae Daphne mucronata S Royle LI 39 Shrub Seeds Raw Skin problem Seeds can be used for skin diseases. 39 0.22 0.026 74.36 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 □, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 ■, 23 □, 24 □, 25 □, 26 □, 27 □, 28 □, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 ■, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □
Urticaceae Urtica dioica L. LI 104 Bichu- buti Herb Leaf, Seeds Paste Wound healing Its Leaf and seeds are mixed with oil and used on skin for wound. 18 0.10 0.056 83.33 1 □, 2 □, 3 □, 4 □, 5 □, 6 □, 7 □, 8 □, 9 □, 10 □, 11 □, 12 ■, 13 □, 14 □, 15 □, 16 □, 17 □, 18 □, 19□, 20 □, 21□, 22 ■, 23 □, 24 □, 25 □, 26 □, 27 □, 28 ■, 29 □, 30 □, 31 □, 32 □, 33 □, 34 □, 35 □, 36 □, 37 □, 38 □, 39 □, 40 □, 41 □, 42 □, 43 □, 44 □, 45 □, 46 □, 47 □, 48 □, 49 □, 50 □

FC Frequency of citation, RFC Relative frequency of citation, UV Used value, FL Fidelity level, □ = Dissimilar plants with previous literature, ■ = Similar plants with previous literature; ● Dissimilar plants with previous literature

1 = [47], 2 = [48], 3 = [22], 4 = [29], 5 = [1], 6 = [3], 7= [49], 8 = [50], 9 = [51], 10 = [26]. 11 = [7], 12 = [27], 13 = [5], 14 = [52], 15 = [53], 16 = [54]. 17 = [55], 18 = [28], 19 = [56], 20 = [57], 21 = [58], 22 = [59], 23 = [60], 24 = [61], 25 = [17], 26 = [62], 27 = [63], 28 = [64], 29 = [65], 30 = [66], 31 = [67], 32 = [28], 33 = [68], 34 = [69], 35 = [30], 36 = [70], 37 = [71], 38 = [72], 39 = [73], 40 = [11], 41 = [74], 42 = [75], 43 = [76], 44 = [77], 45 = [78], 46 = [79], 47 = [80], 48 = [81], 49 = [82] 50 = [83].

Fig. 2.

Fig. 2

Dominant families of medicinal plants utilized for skin disorders in Northern Pakistan

Plant parts used in herbal medicines

Leaves (62%) were reported to be the most frequently used plant part to prepare herbal medicine either by singly or mixes by other plant parts. Leaves were followed by roots (19 species), flowers (18 species), seeds (15 species), fruit (11 species), whole plant (8 species) and stem, bulb, latex, aerial parts contributed (1 species each) (Fig.3). A schematic representation of part used of medicinal plants is shown in (Additional file 1).

Fig. 3.

Fig. 3

Medicinal plant parts utilized for skin disorders in Northern Pakistan

Mode of preparation

Mode of administration for herbal remedies used for treating skin diseases include decoction, infusion, powder, poultice, raw, extract, juice, cooked, paste and oil. Among various preparation methods, the powder was the most frequently used (23 species), followed by paste (19 species), decoction (16 species), extract (14 species), raw and poultice (each has 8 species) (Fig. 4). A schematic representation of the mode of utilization of medicinal plants is shown in (Additional file 1).

Fig. 4.

Fig. 4

Mode of utilization of medicinal plants used for skin disorders in Northern Pakistan

Used categories in skin diseases

In this study, the skin diseases were assembled into 13 groups. The skin category includes pimples, mumps, measles, wound healing, boils, skin burns, abscesses, inflammation, skin irritation, allergy, burning sensation, skin cleanser and sensation (Table 2). In this study, the maximum figure of plant was used in handling for wound healing (34 species) followed by skin burn (11 species). Other important skin ailments treated by plant flora in the area were boils and pimples (9 species). The lowest citation reports (1%) were recorded for mumps, measles and skin irritations (Fig. 5).

Fig. 5.

Fig. 5

Categories diseases of medicinal plants used for skin disorders in Northern Pakistan

Quantitative ethnobotany

Value of medicinal plant

In addition to the use of questionnaires, various analytical tools were required so it could be possible to do quantification of data by cross verification of indigenous information to treat skin diseases in the study site. Species with the highest use value was Pisum sativum (Fabaceae) (UV 0.143) (Table 2). Other important plants were Cynodon dactylon (UV 0.125) reported by 16 participants and Bergenia ligulata reported by 17 participants (UV 0.118) (Table 2). Adiantum venustum had very low use value (UV 0.021).

Relative frequency of citation (RFC %)

The RFC represented the prominent species used for skin related diseases based on the ratio between the number of participants (FC) for a plants and the overall number of participants in the research study. RFC ranged from 0.07 to 0.25 and we classified all species into 3 groups: RFC 0.07 to 0.12 (39 species); RFC, 0.13 to 0.18 (37 species); RFC 0.19 to 0.27 (30 species) (Table 2). According to pharmacological and ethnobotanical records, the majority of plants in the first group were reported with high medicinal potential. The highest values were recorded for Adiantum venustum (0.27) used in the form of paste for wound healing properties, Artemisia fragrans (0.25) used in the treatment of boils, similarly Aconitum chasmanthum (0.24) used as a decoction for treatment of mumps and measles. Other high RFC species were Trigonella foenum-graecum, Verbascum thapsus, Saussurea heteromala, Rosa chinensis, Gerbera gossypina, Helianthus annuus and Aquilegia pubiflora.

Fidelity level (FL)

FL value is calculated for handling specific ailment in this study site. We examined the disease categories to focus the most significant medicinal plant species in each category of skin ailment in terms of FL. It is analyzed for the plant species which were used to cure the most commonly reported category for high FL values 100% and lower FL value 36.8%. FL values were classified into four FL classes (Table 2). FL value of class one was 100% (2 species), class two 97 to 89% (18 species), class three 88 to 79% (44 species), class four 78 to 69% (31 species), class five 68 to 33% (11 species). In the present study, Salix babylonica and Sonchus asper had an FL of 100%, Prunus armeniaca 96.8%, and Momordica charantia 94.74%. Lowest values were found for Pinus wallichiana (44.4) and Galium abaujense (36.8).

Family importance value (FIV)

The analysis of family importance value reported to Pteridaceae has the maximum FIV (26.6%), followed by Fabaceae (22.2%), Scrophulariaceae, Thymelaeaceae and Caryophyllaceae (21.6). Lowest values were observed for Cyperaceae 7.7 (Fig.6). These medicinal plants are explored equally by all the communities on a regular basis and the folk knowledge is constant.

Fig. 6.

Fig. 6

Family importance value of medicinal plants utilized for skin disorders in Northern Pakistan

Jaccard index (JI)

A comparison of medicinal uses of plants was made by analyzing 50 research papers from aligned countries (Table 2). The review of the literature showed that 106 reported medicinal plant species share similar uses fluctuated from 0% [29] to 13.2% while nonsimilar usage from 3.77 [64] to 0% [70]. The lowest degree of similarity was found in the studies reported in India and South Africa on skin diseases by [5, 4951] (Table 3). The comparison was based on skin disease reports in several studies, presenting the usage of therapeutic plants for the cure of skin infections in local communities.

Table 3.

Comparison of the present study with previous literature at local, regional and global level

S. No Study Site Year Number of plant spp. recorded in aligned areas Plants reported for similar uses Plants reported for dissimilar uses Total plant spp. common in both the area %age of plant spp. common in both the areas Plant species enlisted only in aligned areas Species enlisted only in study area %age of plant spp. enlisted only in the study area %age of plant species with similar uses %age of plant species with dissimilar uses Jaccard index (JI) Citation
1 Amman, Jordan 2003 58 6 1 7 12.07 51 99 93.40 5.6603774 0.94 4.90 [47]
2 Karnataka, India 2003 31 0 1 1 3.23 30 105 99.06 0 0.94 0.75 [48]
3 Assamese, India 2006 85 5 2 7 8.24 78 99 93.40 4.7169811 1.89 4.12 [22]
4 Central Kenya 2007 57 0 1 1 1.75 56 105 99.06 0 0.94 0.63 [29]
5 North-West Frontier Province, Pakistan 2010 66 14 1 15 22.73 51 91 85.85 13.207547 0.94 11.81 [1]
6 Central Chaco, Argentina 2010 72 1 1 2 2.78 70 104 98.11 0.9433962 0.94 1.16 [3]
7 South Africa 2014 117 1 1 2 1.71 115 104 98.11 0.9433962 0.94 0.92 [49]
8 Eastern Cape, South Africa 2014 106 2 1 3 2.83 103 103 97.17 1.8867925 0.94 1.48 [50]
9 Uttarakhand, India 2014 90 5 3 8 8.89 82 98 92.45 4.7169811 2.83 4.65 [51]
10 Pakistan 2013 50 3 1 4 8.00 46 102 96.23 2.8301887 0.94 2.78 [26]
11 France 2015 1 1 0 1 100.00 0 105 99.06 0.9433962 0.00 0.96 [7]
12 Kenya 2015 25 1 0 1 4.00 24 105 99.06 0.9433962 0.00 0.78 [27]
13 South Africa 2013 47 0 0 0 0.00 47 106 100.00 0 0.00 0.00 [5]
14 India 1992 50 0 0 0 0.00 50 106 100.00 0 0.00 0.00 [52]
15 North West Punjab, Pakistan 2012 12 3 0 3 25.00 9 103 97.17 2.8301887 0.00 2.75 [53]
16 Saudi Arabia 2015 4 0 0 0 0.00 4 106 100.00 0 0.00 0.00 [54]
17 India 95 2 1 3 3.16 92 103 97.17 1.8867925 0.94 1.56 [55]
18 Nigeria 2008 41 1 1 2 4.88 39 104 98.11 0.9433962 0.94 1.42 [28]
19 India 2010 11 0 0 0 0.00 11 106 100.00 0 0.00 0.00 [84]
20 South Africa 1999 9 3 1 4 44.44 5 102 96.23 2.8301887 0.94 3.88 [57]
21 Eastern Cape, South Africa 2016 1 0 0 0 0.00 1 106 100.00 0 0.00 0.00 [58]
22 Iran 2014 18 3 1 4 22.22 14 102 96.23 2.8301887 0.94 3.57 [59]
23 Haryan, India 2012 100 0 0 0 0.00 100 106 100.00 0 0.00 0.00 [60]
24 India 2012 1 0 0 0 0.00 1 106 100.00 0 0.00 0.00
25 Thailand 2015 55 0 0 0 0.00 55 106 100.00 0 0.00 0.00 [17]
26 Mizoram, India 2014 4 0 0 0 0.00 4 106 100.00 0 0.00 0.00 [62]
27 Peru, Amercia 1997 9 0 0 0 0.00 9 106 100.00 0 0.00 0.00 [63]
28 Palestine, Israel 2000 165 4 2 6 3.64 159 100 94.34 3.7735849 1.89 2.37 [64]
29 Africa 2016 61 2 1 3 4.92 58 103 97.17 1.8867925 0.94 1.90 [65]
30 India 2004 23 0 0 0 0.00 23 106 100.00 0 0.00 0.00 [66]
31 Chinese 2015 16 0 0 0 0.00 16 106 100.00 0 0.00 0.00 [67],
32 Nigeria 2014 41 1 1 2 4.88 39 104 98.11 0.9433962 0.94 1.42 [28]
33 Pakistan 2011 47 4 3 7 14.89 40 99 93.40 3.7735849 2.83 5.30 [68]
34 Karnataka, India 2014 102 0 2 2 1.96 100 104 98.11 0 1.89 0.99 [69]
35 Turkey 2012 1 0 0 0 0.00 1 106 100.00 0 0.00 0.00 [30]
36 India 2012 1 0 0 0 0.00 1 106 100.00 0 0.00 0.00 [70]
37 Turkey 2012 1 1 0 1 100.00 0 105 99.06 0.9433962 0.00 0.96 [71]
38 India 2011 1 0 0 0 0.00 1 106 100.00 0 0.00 0.00 [72],
39 Turkey 2010 1 0 0 0 0.00 1 106 100.00 0 0.00 0.00 [73]
40 Ethiopia 2006 5 1 1 2 40.00 3 104 98.11 0.9433962 0.94 1.90 [11],
41 India 2010 1 0 0 0 0.00 1 106 100.00 0 0.00 0.00 [74]
42 Nigeria 2010 1 0 0 0 0.00 1 106 100.00 0 0.00 0.00 [75]
43 Brazil 2009 12 0 0 0 0.00 12 106 100.00 0 0.00 0.00 [76],
44 India 2007 51 2 1 3 5.88 48 103 97.17 1.8867925 0.94 2.03 [77],
45 Jordan 2007 5 0 1 1 20.00 4 105 99.06 0 0.94 0.93 [78]
46 China 2006 25 0 1 1 4.00 24 105 99.06 0 0.94 0.78 [79]
47 South Africa 2013 45 0 0 0 0.00 45 106 100.00 0 0.00 0.00 [80]
48 Ethiopia 2005 8 0 0 0 0.00 8 106 100.00 0 0.00 0.00 [81],
49 Italy 2004 70 3 3 6 8.57 64 100 94.34 2.8301887 2.83 3.80 [82]
50 Jordan 2003 1 0 0 0 0.00 1 106 100.00 0 0.00 0.00 [83]
1.3018868 0.62

Chi-square test

The male participants reported more medicinal plants than women, and it could be stated that males possess more knowledge about the use of medicinal plants than women (Additional file 1). The chi-square on the number of species of plants reported by the two age categories showed important differences. Table 4 represents the median for a number of medicinal species reported by the participants 36–46 and > 46 years of age. Scattering of knowledge was observed in different age groups. The significantly higher average number of medicinal plants (p < 0.05) were mentioned by participants of 69 to 79 years (37.88) for men and (24.1) for women, respectively. There were no significant variations (χ2 = 13.45; P > 0.05) in the < 36 year age group. Analysis of variance (p = 0.05) was used to elucidate the effect of gender, age, and gender to gender interaction on the traditional knowledge of plants in society.

Table 4.

Literature on preliminary in vitro screening of most cited plants

S/No Plant Species Activity References
1. Anethum graveolens Antibacterial and antimicrobial activity [85, 86]
2. Cynodon dactylon Antibacterial and wound healing activity [87, 88]
3. Bergenia ciliata Antibacterial, antibacterial, anti –inflammatory and antiviral activity [89, 90]
4. Adiantum venustum Antibacterial, antifungal and anti-inflammatory activity [91]
5. Gerbera gossypina Antimicrobial activity [92]
6. Aconitum chasmanthum Antimicrobial activities [93]
7. Trigonella foenum-graecum, Anti-inflammatory, antibacterial and antifungal activities [94]
8. Verbascum thapsus, Anti-inflammatory, antimicrobial, antiviral, and anti-hyperlipidemic activity [95]
9. Saussurea lappa Anti-inflammatory activity [96]
10. Rosa chinensis, Antimicrobial activities [97]
11. Gerbera gossypina Antimicrobial activities [98]
12. Taxus wallichiana Antibacterial and antifungal activites [99]
13. Aquilegia pubiflora Antimicrobial activity [100]
14. Salix babylonica Anti-bacterial and anti-fungal activities [101]
15. Sonchus asper Antimicrobial activities [102]
16. Prunus armeniaca Antimicrobial activity [103]
17. Momordica charantia Antibacterial and antifungal activity [104]
18. Urtica dioica Antibacterial and antifungal activity [105, 106]
19. Dodonaea viscosa Antifungal activity [107]
20. Bergenia stracheyi Antifungal activity [108]
21. Pisum sativum Antifungal activity [109]
22. Butea monosperma Antifungal, antibacterial and anti-inflammatory activities [110]
23. Commelina benghalensis Anti-inflammatory and wound healing activities [111]
24. Polygonum nepalense Antimicrobial. And antifungal activity [112]
25. Valeriana jatamansi Anti-inflammatory activity [113]
26. Cannabis sativa Antimicrobial activity [114]
27. Plantago major Antibacterial activity [115]
28. Berberis lycium Antibacterial, antifungal and healing properties [116]
29. Taraxacum officinale Antimicrobial activity [117]
30. Myrsine Africana Antimicrobial activity [1]
31. Allium sativum Antimicrobial and wound Healing [118]
32. Allium cepa Antimicrobial activities [119]
33. Pinus roxburgii Antibacterial activity [120]
34. Senecio chrysanthemoides Antifungal and antibacterial activities [121]
35. Olea europaea Antimicrobial activity [122]
36. Isodon rugosus Antimicrobial activities [123]
37. Micromeria biflora Antimicrobial activities [124]
38. Lawsonia inermis Antimicrobial and antibacterial activities [125, 126]
39. Teucrium stocksianum Anti-microbial activities [127]
40. Delbergia sissoo Anti-microbial activities [128]

Previous literature on phytochemicals, pharmacological activities, and toxicity

A large number of plants stated in this study possess skin cure possessions and might have compound that are indirectly or directly active against parasites. These compounds are known as secondary metabolic compounds. Medicinal plants used for skin diseases were investigated for preliminary in vitro studies, essential phytochemicals and toxicity from the previous studies. Some of the plant species used for skin ailments have been reported for numerous secondary metabolites which show the significance of the plants in traditional remedies (Table 4).

Preliminary in vitro screening of some of the most mentioned plants have been mentioned to validate the findings of the present study (Table 5). In spite of the wide application of active metabolic compounds for humans; they also have a health hazardous effect because of much toxins. These substances not only hamper with the growth of parasite also have lethal effects on mammalian cells (Additional file 1: Table S1). It is, therefore, important to validate the toxic effects of medicinal plant products in relation to their anti-nutritional and other side effects.

Table 5.

Phytochemical activities and toxicity of medicinal plants used for skin diseases

S/No Family / Scientific name / coll. # Phytochemicals Toxicity
1. Acanthaceae Justicia adhatoda L. LI 58 Alkaloids, phenolic, flavonoids and sterols [129] Less toxicity [130]
2. Amaryllidaceae Allium cepa L. LI 6 Alkaloids, flavonoids, cardiac glycosides, terpene, steroids and resins [131] None
3. Amaryllidaceae Allium sativum L LI 7 Saponin, steroids, tannins, carbohydrates and cardiac glycosides [132] Excessive use cause toxicity like acute toxicity, burning sensation in the mouth and gastrointestinal tract, nausea, diarrhea, vomiting [133]
4. Apiaceae Anethum graveolens L. LI 10 Essential oils, fatty oil, proteins, carbohydrates, fiber and ash [134] Nontoxic [135]
5. Apiaceae Coriandrum sativum L. LI 33 Alkaloids, carbohydrates, volatile oil, tannins, and flavonoids [136] Acute and sub chronic toxicity [137]
6. Apiaceae Ferula foetida (Bunge) Regel. LI 47 Terpenoids, Sulfide derivatives, volatile Oil and Phenols [138] Little toxicity including (including lung metastasis) [139]
7. Apiaceae Pleurospermum brunonis Benth. ex C.B.Clarke LI 80 None None
8. Apocynaceae Calotropis procera (Aiton) Dryand. LI 24 Cardenolides, flavonoids, and saponins [132] . Highly toxic [140]
9. Apocynaceae Carissa spinarum L. Haines LI 22 Alkaloids, tannin, glycoside, steroids and carbohydrates [141] Acute toxicity (Shamim, 2014)
10. Apocynaceae Rauvolfia serpentina L. LI 84 Phenolic acids and flavonoids [142] None
11. Asteraceae Anaphalis margaritacea (L.) Benth. & Hook.f. LI8 Flavonoids, polyacetylenes, and hydroxylactone [143]
12. Asteraceae Artemisia vulgaris L. LI 12 Carbohydrate, saponins, phytosterol, proteins, amino acid, tannin & phenolic compounds and flavonoids [144] Genotoxicity [145]
13. Asteraceae Gerbera gossypina (Royle) Beauverd LI 50 None Less toxicity [139]
14. Asteraceae Gnaphalium affine D.Don LI 51 Flavonoids, sesquiterpenes, diterpenes, Triterpenes and phytosterols [146] Damage oxidative compounds and produce various toxic compound that are harmful for humans [139]
15. Asteraceae Launaea nudicaulis (L.) Hook.f. LI 60/ Flavonoids, anthocynadins and flavanones [147] Nontoxic [148]
16. Asteraceae Saussurea lappa (Decne.) Sch.Bip. LI 93 Alkaloids, glycosides, phenolics, steroids and terpenoids [149] Acute toxicity [150]
17. Asteraceae Senecio chrysanthemoides DC LI 94 Triterpene, emodins,polyphenol, reducing sugar and anthocyanosides [151] Hepatotoxicity [150]
18. Asteraceae Sonchus asper (L.) Hill LI 96

Ascorbic acid, carotenoids

and fatty acids [152]

Acute toxicity [153]
19. Asteraceae Taraxacum officinale aggr. F.H. Wigg. LI 99 phenolic compounds, flavonoid glycosides [154] Acute toxicity [155]
20. Asteraceae Tussilago farfara L. LI 103 Terpenes, flavonoids, and alkaloids [156] Acute toxicity [157]
21. Balsaminaceae Impatien edgeworthii Hook. f LI 54

Flavonoids, sugars, alkaloids and saponins

[158]

Cytotoxicity [159]
22. Berberidaceae Berberis lycium Royle LI 15 ß-sitosterol, 4,4-dimethylhexadeca-3-ol, Butyl-3-hydroxypropyl phthalate, Butyl-3-hydroxypropyl phthalate and 4-methyl-7-hydroxycoumarin [160] Acute toxicity and oral toxicity [158]
23. Boraginaceae Hackelia americana (A.Gray) Fernald LI 52 Phenols, saponins, and flavonoids [161] Hepatotoxicity [162]
24. Boraginaceae Onosma hispida Wall. ex G. LI 71 Flavonoid, amines, iridoids and sesquiterpene [163] Acute toxicity [164]
25. Brassicaceae Brassica juncea (L.) Czern. LI 20 2,6-dichlorophenol indophenol and HEPES 4-(2-Hydroxyethyl)-1- piperazine-ethane-sulphonic acid [165] Poisonous [166]
26. Buxaceae Buxus papillosa C.K. Schneid. LI 21 Cyclobuxupaline-C (IV)(+)-cyclopapilosine-D (VII) and (+)-buxamine-C [167] Nonpoisonous [168]
27. Cannabaceae Cannabis sativa L LI 26 Alkaloids, flavonoids, cardiac glycosides, resins, terpins and steroids [169]. High doses cause inhibition of hepatic drug and decreased fertilization capacity [170]
28. Capparaceae Capparis decidua (Forssk.) Edgew. LI 27 alkaloids, phenols, sterols and glycosides [171] Acute toxicity [172]
29. Caprifoliaceae Valeriana jatamansi Jones ex Roxb. LI 105 Phenols, flavonoids and tannins [173] Fumigant toxicity [174]
30. Caryophyllaceae Cerastium fontanum subsp. vulgare (Hartm.) Greuter & Burdet, LI 29 None None
31. Commelinaceae Commelina benghalensis L LI 32 Terpenoids, saponins, tannins, flavonoids, steroids, phenolic compounds, alkaloids and cardiac glycosides [175] Acute and sub-acute toxicity, male reproductive toxicity [176]
32. Convolvulaceae Cuscta reflexa Roxb. LI 35 Flavonoids and tannins [177] Oral toxicity [178]
33. Cucurbitaceae Cucumis melo L. LI 36 Alkaloids, terpenoids, carbohydrate, proteins, flavonoids, phytosterols [179] Metal toxicity [180]
34. Cucurbitaceae Lagenaria siceraria (Molina) Standl. LI 59 Protein, carbohydrates, Flavonoid and saponin [181] Gastrointestinal toxicity [182]
35. Cucurbitaceae Momordica charantia L. LI 67 Alkaloid, glycoside, aglycone, tannin, sterol, phenol, protein and carbohydrate [183] Hepatotoxicity [184]
36. Cupressaceae Juniperus communis L. LI 56 Steroids, alkaloids, phenolics, flavonoids, tannins and terpenoids [185] Nephrotoxicity [186]
37. Cupressaceae Juniperus excelsa M. Bieb. LI 57 Alkaloids,flavonoids, phenols, saponins and diterpenes [187] Cytotoxicity [188]
38. Cyperaceae Cyperus difformis L LI 38 Flavonoids, coumarins, tannins and sterols [189] Fumigent toxicité [190](Chang et al., 2012)
39. Elaeagnaceae Hippophae rhamnoides L. LI 53 Phenol, Quercetin and Catechin [191] Non toxic [192]
40. Equisetaceae Equisetum arvense L. LI 43 Flavonoids, alkaloids, minerals, phenolic petrosins, triterpenoids, saponins, phytosterols [193] Acute and metal toxicity [194]
41. Euphorbiaceae Euphorbia helioscopia L. LI 44 Reducing sugars, terpenoids, alkaloids, steroids, tannins, flavanoids and phenolic compounds [195] Cytotoxicity [196]
42. Fabaceae Butea monosperma (Lam.) Kuntze LI 14 Sterols, triterpenes, glycosides flavonoids and proteins [197]. Acute and oral toxicity [198]
43. Fabaceae Delbergia sissoo L. LI 41 Proteins, phyto sterols, tannins, starch, flavonoids and tannins [199]. Acute toxicity [200]
44. Fabaceae Pisum sativum L. LI 77

Tannins, terpenoides, alkaloids

and flavonoids [201]

Cadmium toxicity in human [202]
45. Fabaceae Trigonella foenum-graecum L LI 102 Alkaloids, cardiac glycosides, and phenols [203] Acute toxicity [204]
46.

Gentianaceae

Swertia abyssinica Hochst.

LI 97

None Hepatic toxicity [205]
47.

Lamiaceae

Ajuga integrifolia Buch-Ham-ex D. Don

LI 5

Essential oil [206] Body weakness [205]
48.

Lamiaceae

Isodon rugosus (Wall. ex Benth.) LI 55

Alkaloids, glycosides, flavonoids, oils, terpenoids, saponins, tannins and anthraquinones [207] Cytotoxicity [159]
49.

Lamiaceae

Micromeria biflora (Buch.-Ham. ex D.Don) Benth

LI 66

None Membrane toxicity of cell [184]
50.

Lamiaceae

Nepeta hindostana (B.Heyne ex Roth) Haines.

LI 68

None Mycotoxin [208]
51.

Lamiaceae

Rydingia limbata (Benth.) Scheen & V.A. Albert

LI 90

None Cytotoxicity [209]
52.

Lamiaceae

Salvia moorcroftiana wall. ex Benth

LI 92

Flavonoids, diterpenoids and sterols

[210]

Nontoxic inhibitor [211]
53.

Lamiaceae

Teucrium stocksianum Boiss.

LI 101

Alkaloids, tannins, flavonoids, saponins, steroid, reducing sugar, terpenoid, anthraquinone, phlobatannin and glycoside [212] Acute toxicity [213]
54.

Loranthaceae

Loranthus pulverulentus Wall

LI 62

Triterpenoids, alkaloids, carbohydrates, flavanoids, proteins, tannins and glycosides [214] Low toxicity [148]
55.

Lythraceae

Lawsonia inermis

L.

LI 61

Glycosides, phytosterol, steroids, saponins, and tannins [215] Highly toxic [148]
56.

Malvaceae

Abelmoschus esculentus (L.) Moench

LI 1

Carbohydrate, gums and mucilages, proteins, phytosterols, flavonoids, tannins, phenolic

Compounds and volatile oil (Saha et al., 2011).

No toxic effect [216]
57.

Meliaceae

Melia azadarach L.

LI 65

Alkaloids, Tannins, Saponins, Phenols [217] Toxic [218]
58.

Myrsinaceae

Myrsine africana L.

LI 63/

Saponins, tannins, flavonoids, amino acids, steroids and reducing sugar [219] Acute toxicity [148]
59.

Nitrariaceae

Peganum harmala L.

LI 72

Alkaloids, flavonoids and anthraquinones [220] Cytotoxicity [221]
60.

Nyctaginaceae

Boerrehavia diffusa L.

LI 19/

1,1-diphenyl picrylhydrazyl, phenolic, flavonoid and ascorbic acid [222] Acute toxicity [223]
61.

Oleaceae

Olea europaea subsp. cuspidata (Wall. & G.Don) Cif

LI 70

Flavonoids, terpenes [224] Low toxicity [164]
62.

Papaveraceae

Corydalis govaniana Wall. LI 34

Alkaloids [225] Acute toxicity (Mukhopadhyay et al., 1987)
63.

Phytolaceae

Phytolacea letsenia L.

LI 73

None
64.

Pinaceae

Cedrus deodara (Roxb. ex D.Don).

LI 28

Tannins, flavanoids, alkaloids, and terpenoids [226] Cytotoxicity [172]
65.

Pinaceae

Pinus roxburgii Sarg

LI 75/

Flavonoids and terpenoids [227] Acute toxicity [228]
66.

Pinaceae

Pinus wallichiana A.B. Jacks.

LI 76

Flavonoid and phenolic [229] Toxic [228]
67.

Plantaginaceae

Picrorhiza kurrooa Royle. ex Benth.

LI 74

Sterols, glycosides and phenolic compounds [230] Cytotoxicity [231]
68.

Plantaginaceae

Plantago major L.

LI 78

Alkaloids, flavonoids, saponins, quinones, terpenes, lignans, tannins, polysaccharides, steroidal glycoside, thiosulfinates, proanthocyanidin and proteins [232] Less toxicity [233]
69.

Plantaginaceae

Plantago lanceolata L.

LI 79

Anthraquinone,

Glycosides and alkaloids [234]

Not toxic [235]
70.

Poaceae

Cynodon dactylon (L.) Pers.

LI 37

Alkaloids, anthroquinone, flavonoids, saponins, steriods, tannins and triterpenoid [190] Fungal growth, biomass toxicity [236]
71.

Polygonaceae

Fagopyrum acutatum (Lehm.) Mansf. ex K.Hammer

LI 45

Protein, carbohydrates, fat and rutin [237] Hepatotoxicity [238]
72.

Polygonaceae

Polygonum nepalense Meissn.

LI 81

None Toxic [239]
73.

Polygonaceae

Rumex abyssinicus Jacq.

LI 87

Tannins, anthraquinones, amino acids flavonoids and carbohydrates [240] Non toxic in cell [241]
74.

Polygonaceae

Rumex dissectus H. Lév.

LI 88

B-carotene linoleic acid, has antioxidant activity [242] Less toxic [243]
75.

Polygonaceae

Rumex dentatus L.

LI 89

Alkaloids, terpenoids, flavonoids and tannins [244] Toxic [174]
76.

Polygonaceae Fagopyrum tataricum (L.) Gaertn.

LI 46

Flavonoids [245] Cytotoxicity [246]
77.

Primulaceae

Androsace rotundifolia Lehm. ex Roem. & Schult.

LI 9

None Less toxic [247]
78.

Pteridaceae

Adiantum venustum D. Don

LI 4

Adininaneone, adininaonol and Norhopan [248] Nontoxic (Huxley et al., 1992)
79.

Ranunculaceae

Aconitum chasmanthum Stapf ex Holmes

LI 2

Alkaloids, benzoylmecasonine and mesaconitine [249] Some species are highly poisonous [250]
80.

Ranunculaceae

Aconitum delphinifolium DC.

LI 3

Alkaloids, benzoylmecasonine and mesaconitine [249] Slightly poisonous when used in access [250]
81.

Ranunculaceae

Aquilegia pubiflora Wall. ex Royle

LI 13

None Nontoxic [251]
82.

Ranunculaceae

Caltha alba Cambess

LI 25/

Alkaloides, flavonoids, glycosides and triterpenoides [252] Acute toxicity, cytotoxicity [216]
83.

Ranunculaceae

Nigella sativa L.

LI 69

Flavonoid glycosides quercetin and kaempferol 3-glucosyl [253] Hepatotoxicity [254]
84.

Rhamnaceae Colubrina oppositifolia Brongn. ex H. Mann

LI 23

None
85.

Rosaceae

Malus pumila Mill.

LI 64

Triterpenoids and flavonoids [255] Hepatotoxic [148]
86.

Rosaceae

Prunus armeniaca L.

LI 82

Carbohydrates, phenolic compounds and organic acids [256] Acute and renal toxicity [257]
87.

Rosaceae

Prunus persica (L.) Batsch

LI 83

Phenolics, anthocyanins and flavonoids [258] Toxic side effects [259]
88.

Rosaceae

Rosa chinensis Jacq

LI 85

None None
89.

Rosaceae

Rubus abchaziensis Sudre

LI 86

Diterpene glycosides, phenolic glycoside and Lignan glycoside [260] Cytotoxicity and mitochondrial toxicity [261]
90.

Rubiaceae

Galium abaujense Borbás

LI 48

None None
91.

Rubiaceae

Gallium aparine L.

LI 49

None None
92.

Rutaceae

Zanthoxylum armatum DC

LI 11

Limonene,linalool,neral [262] Cytotoxic and Phytotoxic potential [263]
93.

Rutaceae

Citrus medica L.

LI 30

Carbohydrates, proteins, amino acids and flavonoids [264] Estrogenic effect [265]
94.

Rutaceae

Citrus sinensis L.

LI 31

tannin, alkaloid, saponin, flavonoid, steroid, tripertenes [266] Fumigant toxicity [267]
95.

Salicaceae

Salix babylonica L.

LI 91

Phenolics and saponins [268] Cytotoxicity [269]
96.

Sapindaceae

Dodonaea viscosa (L.) Jacq

LI 42

Carbohydrates, flavonoids, proteins, amino acids, saponins, steroids, sterols, tannins, and triterpenoids [270] Acute toxicity [271]
97.

Saxifragaceae

Bergenia ciliata (Haw.) Sternb

LI 16

Alkaloids, carbohydrates, cardiac glycosides, saponins, phenols, flavonoids and diterpenes [272]. Acute toxicity [273]
98.

Saxifragaceae

Bergenia ligulata Engl.

LI 17

Bergenin, catechin, gallicin and gallic acid [274] Radical toxicity in renal epithelial cell [275]
99.

Saxifragaceae

Bergenia stracheyi Hook.f. & Thomson) Engl

LI 18

Bergenin 2. Tannic acid 3. Gallic acid 4. Stigmesterol 5. β-Sitosterol 6. catechin 7 [276] Acute toxicity [277]
100.

Scrophulariaceae

Verbascum thapsus L.

LI 106

Methanolic extract has antiviral activity against the pseudorabies virus [278] Toxic pyrrolizidine alkaloids [279]
101.

Solanaceae

Datura stramonium L.

LI 40

Saponins, tannins, alkaloids and glycosides [280] Poison and hallucinogen [281]
102.

Solanaceae

Solanum virginianum L.

LI 95

None Cytotoxicity [282]
103.

Tamaricaceae

Tamarix aphylla (L.) H. Karst.

LI 98

Flavonoids, alkaloids and tannins [283] Less toxic [284]
104.

Taxaceae

Taxus wallichiana Zucc.

LI 100

Diterpenoids, lignans, flavonoids, steroids and sugar derivatives [285] Hepatotoxicity [286]
105.

Thymelaeaceae

Daphne mucronata S Royle

LI 39

Coumarins, flavonoids, triterpenoids, lignin, glucosides, daphnine and umbelliferone [287] Leaf extract is highly toxic [287]
106. Urticaceae Urtica dioica L. LI 104 Phytosterols, saponins, flavanoids, tannins, hydrolysable tannins, phenolic compounds, proteins and amino acids [288] Nontoxic [289]

Comparison with other studies in neighbouring regions

In the present study, some plants were used alone to treat the particular diseases, while in some cases plant parts were mixed to treat diseases. This present study reported 63 novel plants for skin diseases from Northern Pakistan, including Ajuga integrifolia, Anaphalis chitralensis, Capparis himalayensis, Gnaphalium affine, Isodon rugosus, Tamarix aphylla, Nepeta clarkei, Launaea nudicaulis, Valeriana jatamansi (Table 2).

Discussion

This study was carried out in the native groups of Northern Pakistan. People use medications for the cure of several diseases. Generally the medicinal plants are used in village parts of the area. The majority of professional healers in this study were males, this finding is similar to the literature [290]. According to an estimate, 84% of the rural population relies on herbal traditional medicinal plants [291]. Different origins of the medicinal plant knowledge were recorded. The inherited knowledge of medicinal plants is transferred through orally a cultural practice common in the rural areas in addition to the divine revelation. Most people inherit traditional knowledge from their elders that passed generation to generation [292].

The most dominant life form uses in the study was herbs. Herbs are easily available and collected from roadsides and farmlands [293295]. Asteraceae was the most preferred family used. Previous work [3] also reported Asteraceae (6 species), Lamiaceae (6 species) and Fabaceae (5 species) with large figure of medicinal flora. There seems to be a tendency for a few families of plants to stand out in any pharmacopeia [296]. These plant families have been reported with high pharmacological, organoleptic and pharmaceutical properties [297]. The fewer species were observed in 37 families that are similar to previous studies [298, 299].

Among the reported plant part leaves were the most used plant part. In various studies, leaves were reported to be used as powder and paste on the affected skin areas [300]. The powder was found to be the most preferred method of utilization. The use of powder and decoction is the major mode of utilization in the herbal preparations in the ethnomedicinal studies by [35, 301]. The preparations were applied 2–3 times daily until healing occurred. A large number of herbal preparation involved soaking the plant material in water for a few days and taking the infusion, while few involved boiling the parts of plants and take the decoction. The drugs were usually prepared from the paste of the plant part either with water, lime water, rose water, coconut water, milk, ghee, and butter. Sometimes juice extract from fresh parts of plants was used. Treatments were done with single plant parts or a combination of different parts of the same plant. The amount of powder used to make a concoction was defined as a half, full or a quarter of a teaspoon. In the morning, the mixtures were regularly used before breakfast or afterward dinner, for 3-7 successive days, or till the patient was completely cured.

The medicinal plants described in this study for the cure of skin infections might also be utilized additionally for their phytochemical and pharmacological activities. Following reports carried out in various areas also described the common practices of medicinal species usage against the diseases of skin [22, 29, 48].

The overall effectiveness of the mentioned plant species in the context of curing skin ailments was calculated on the basis of the computed index called used value [40]. This species was mentioned by 21 participants. Wounds and skin burns treated by Pisum sativum showed an increase in oxygen supply as a result of increased blood pressure flow [302]. In other studies glycoprotein extracted from Pisum helped the formation of epidermis tissues [303]. The highest UV for important medicinal plants like Pisum sativum and Cynodon dactylon might be ascribed to the trends of using herbal drugs for skin diseases in the area. It is also observed that plant species that are using repeatedly are more possibly to be active biologically and have good healing properties [53]. Less available in the study site parallel to small UV e-g in case of Adiantum venustum [304].

Relative frequency of citation is applied to choose high potential medicinal plant species for future research anti-skin diseases drug development. The medicinal species that have high RFC should be further analyzed for phytochemical compounds, to recognize their active chemical components for drug discovery [305]. These findings might be considered as of greatest importance for relating and assessing study in associated hypothetical fields for upcoming drug inventory and sustainable utilization of plant species for medicinal purposes [306].

The plant species that were cited only once by a single participant were not considered for the fidelity level study. The high value of FL indicates the choice of participants to treat the specific disease [84]. These plants can be verified as significant medicinal flora on additional estimation by the help of pharmaceutical, phytochemical and biological actions. We have found the species as more significant having 80 FL% or greater.

In [292] the maximum value of FIV was documented for Juglandaceae (45%) followed by Punicaceae (44%) whereas the lowest value was noted for Vitaceae and Rubiaceae (3%) The results of present study vary from previous literature reports due to differences in climate and vegetation of area [307]. The highest percentage of FIV demonstrates that the plants of a particular family are commonly used in curing many diseases as reported by participants.

Jaccard index is used to find out the similarity of medicinal uses with previous studies carried out on skin ailments. The maximum level of resemblance was present in findings carried out in North-West Frontier Province, Pakistan and Gilgit Baltistan Pakistan on skin diseases [1, 73]) with Jaccard index value 11.81 and 5.30, respectively. About 12% average similarity is reported among different areas and the study regions. The recent study represents a high level of novelty index with respect to the use of medicinal species in skin diseases and its significance in old traditional recipes [308] specified in his study work that the medicinal plants repeatedly cited must be utilized as herbal drug development. The comparison of similarities shows the significant authenticity of documented data. Similarly, the medicinal plants which are not cited in previous work should be assessed for pharmacological and phytochemical analysis for drug discovery development.

In this research, the use of medicinal plants against skin diseases were studied for the occurrence of various toxicity and phtochemicals stated in former literature (see Table 5, Additional file 1). Mostly all the species had been described previously for their one or more phytochemical important compound representing their importance in medicinal cures. In the study, phytochemical analysis on genus, Aconitum has directed to the identification of alkaloids, benzoyl mecasonine and mesaconitine [249]. Some species of Aconitum are slightly poisonous when used in the excess amount [250]. In other studies, Bergenia ciliate was reported to contain active compounds such as alkaloids, carbohydrates, cardiac glycosides, saponins, phenols, flavonoids and diterpenes [272]. Allium sativum is rich with saponins, steroids, tannins, carbohydrates, allicin and cardiac glycosides which possess essential skin diseases curing activity [132]. Alkaloids, flavonoids, phenols, saponins and diterpenes compounds of Juniperus excels also have reported skin properties [185]. High consumption of flavonoids and phenolics may inhibit enzyme activity and cause oxidative damage [309]. Some alkaloids can inhibit enzyme activity, block ion channels loss of coordination, convulsions, hallucination and even death [310]. Myrsine Africana reported to have an acute toxic effect and Malus pumila cause hepatotoxicity [148], Rubus fruticosus damage cell activity that was stated by [261]. Discovery of drugs from medicinal plants links a multidisciplinary approach to joining pharmacological, botanical, ethnomedicinal and natural methods. Some natural products of plant derivatives are in the phase of the trial and are in experimental use [311]. Therefore further pharmacological, ethnomedicinal and phytochemical studies should be carried out to authenticate the use of plant species in skin diseases and to discover new drugs.

The root of Butea monosperma was reported for skin diseases in the present study while it is reported as a blood purifier and skin diseases in the work of [312]. Coriandrum sativum was used to control hypertension, joint pain, stomach complaints, and Gastrointestinal tracts problems [313], but in the present study, it is reported to treat pimples and skin problems. Fruits of Lagenaria siceraria were reported to treat severe body pain [314], while our study revealed that fruits and seeds can be used for skin problems. The leaves of Justicia adhatoda have been used for muscular pains in a study of [315], but this study documented that the leaves can be used for wound healing. Leaves of Myrsine africana were reported for stomach problems in the previous studies of [313], these results are in accord with the present study. The flowers and leaves of Verbascum thapsus were used for wounds [314], while the current study found that aerial parts of plant’s may be utilized for the cure of blemishes and several skin related problems.

Launaea nudicaulis and Gnaphalium affine were used often for skin ailments. Asteraceae are generally rich in flavonoids, sesquiterpenes, diterpenes, triterpenes, phytosterols [146]. Nepeta clarkei, Ajuga integrifolia, and Isodon rugosus were used for curing of boils, wound healing and skin problems, respectively. Capparis himalayensis was used for wound healing in areas of Northern Pakistan. The medicinal use of species related to wound healing was not reported earlier. Euphorbia helioscopia was reported for the treatment of cholera, jaundice, respiratory diseases, cancer [46], but the present study reported it for wound healing. Brassica juncea was found to treat some skin problems while the literature suggested it for the treatment of ulcers [316]. In this study, Cucumis melo was used to treat skin burn while in a previous study it was used to treat liver diseases [314]. This study showed that Rheum emodii can be used for skin ailments, while in literature it is mostly reported for the treatment of cancer [317]. Our research also found that Swertia alata, as used for skin diseases, while the previous study reported it only as used for rheumatic disorders [314]. Onosma hispida was documented to treat skin burns, compared to use as skin tonic [318]. Verbascum thapsus also served for curing skin ailments, while traditionally it was reported for stomach diseases [319]. Melia azedarach was found as a treatment for pimples and wound healing, but literature reported this species for sexual problems and as skin tonics [320]. The present work therefore suggest that public sector administrator in study area should make policies in order to protect people from health problems and use of medicinal plants by local people for treatment of diseases.

Conclusions

This is the first quantitative ethnomedicinal study that provides information about the use of 106 species that belonging to 90 genera and 56 families for the treatment of skin diseases in Northern Pakistan. Key findings of the study revealed leaves to be the most used plant parts (58%), herb to be dominant life form (63%) and powder to be the most frequent method of administration (22%). The highest skin disease category was recorded for wound healing (40%). RFC ranged from 0.07 to 0.25%, highest use-value reported for Pisum sativum (0.143 UV), highest FIV was observed for Pteridaceae (26.6 FIV) while FL values ranged from 100% to 36.8. The medicinal information documented in this study could be explored in the future for phytochemical and pharmacological investigations which may lead to plant-based nano-medicine drug discovery and development.

Additional file

Additional file 1: (615.2KB, docx)

Table S1. Chi-square test χ2 test for gender wise distribution. Figure S1. Schematic representation of medicinal plant parts used prepared by NVivo software for skin diseases in Northern Pakistan. Figure S2. Systematic representation of mode of utilization for skin diseases in Northern Pakistan. (DOCX 615 kb)

Acknowledgments

The authors are thankful to all key medicinal plant practitioners and participants for sharing their valuable knowledge on medicinal flora.

Abbreviations

FC

Frequency of citation

FL

Fidelity Level

IBC

Institutional Bio-ethics Committee

ISL

Islamabad

JI

Jaccard index

Pak

Pakistan

RFC

Relative Frequency of citation

THPs

Traditional Health Practitioners

Qau

Quaid-i-Azam uni 

Authors’ contributions

KM carried out field surveys and data collection. MZ, SS NR, SNS, helped in analysis of data while MA critically revised the manuscript to its present form.RU, HMM, L and BP helped in revision of the manuscript and helps in checking the consistency of data. All authors read the final manuscript and agreed to its submission.

Funding

The authors extend their appreciation to the Deanship of the scientific Research at King Saud University for funding through research group no (RG-1440-100).

Availability of data and materials

Not Applicable.

Ethics approval and consent to participate

Verbal consent was taken from participants before carrying out the study as most if the participants were illiterate. Present study was carefully designed with strict compliance of bio-ethics and approved by the Institutional Bio-ethics Committee (IBC) of Quaid-i-Azam University, Islamabad, Pakistan under the approval No PT-5695.

Consent for publication

Not applicable.

Competing interests

The authors declare that they have no competing interests.

Footnotes

Publisher’s Note

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Contributor Information

Khafsa Malik, Email: khafsamalik786@gmail.com.

Mushtaq Ahmad, Email: mushtaqflora@hotmail.com.

Muhammad Zafar, Email: catlacatla@hotmail.com.

Riaz Ullah, Email: rullah@ksu.edu.sa.

Hafiz Majid Mahmood, Email: harshad@ksu.edu.sa.

Bushra Parveen, Email: drbushraparveen@gmail.com.

Neelam Rashid, Email: neelam.must@gmail.com.

Shazia Sultana, Email: shaziaflora@hotmail.com.

Syed Nasar Shah, Email: nasarshah67@gmail.com.

Lubna, Email: lubnafareed91@gmail.com.

References

  • 1.Abbasi AM, Khan M, Ahmad M, Zafar M, Jahan S, Sultana S. Ethnopharmacological application of medicinal plants to cure skin diseases and in folk cosmetics among the tribal communities of North-West Frontier Province, Pakistan. J Ethnopharmacol. 2010;128(2):322–335. doi: 10.1016/j.jep.2010.01.052. [DOI] [PubMed] [Google Scholar]
  • 2.Ashraf M, Hayat MQ, Jabeen S, Shaheen N, Khan MA, Yasmin G. Artemisia L. species recognized by the local community of the northern areas of Pakistan as folk therapeutic plants. J Med Plant Res. 2010;4(2):112-9.
  • 3.Martínez GJ, Barboza GE. Natural pharmacopoeia used in traditional Toba medicine for the treatment of parasitosis and skin disorders (Central Chaco, Argentina) J Ethnopharmacol. 2010;132(1):86–100. doi: 10.1016/j.jep.2010.07.049. [DOI] [PubMed] [Google Scholar]
  • 4.Grice EA, Kong HH, Conlan S, Deming CB, Davis J, Young AC, Bouffard GG, Blakesley RW, Murray PR, Green ED. Topographical and temporal diversity of the human skin microbiome. Science. 2009;324(5931):1190–1192. doi: 10.1126/science.1171700. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 5.De Wet H, Nciki S, van Vuuren SF. Medicinal plants used for the treatment of various skin disorders by a rural community in northern Maputaland, South Africa. J Ethnobiol Ethnomed. 2013;9(1):1. doi: 10.1186/1746-4269-9-1. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 6.Yadav M, Khan KK, Beg M. Ethnobotanical plants used for curing skin diseases by tribals of Rewa district (Madhya Pradesh) Indian Journal of Life Sciences. 2012;2(1):123–127. [Google Scholar]
  • 7.Gonzalez-Aspajo G, Belkhelfa H, Haddioui-Hbabi L, Bourdy G, Deharo E. Sacha Inchi oil (Plukenetia volubilis L.), effect on adherence of Staphylococus aureus to human skin explant and keratinocytes in vitro. J Ethnopharmacol. 2015;171:330–334. doi: 10.1016/j.jep.2015.06.009. [DOI] [PubMed] [Google Scholar]
  • 8.Barboza GE, Cantero JJ, Núñez C, Pacciaroni A, Ariza Espinar L. Medicinal plants: a general review and a phytochemical and ethnopharmacological screening of the native argentine Flora. Kurtziana. 2009;34(1–2):7–365. [Google Scholar]
  • 9.Anisuzzaman M, Rahman A, Harun-Or-Rashid M, Naderuzzaman A, Islam A. An ethnobotanical study of Madhupur, Tangail. J Appl Sci Res. 2007;3(7):519-30.
  • 10.Houghton P, Hylands P, Mensah A, Hensel A, Deters A. In vitro tests and ethnopharmacological investigations: wound healing as an example. J Ethnopharmacol. 2005;100(1–2):100–107. doi: 10.1016/j.jep.2005.07.001. [DOI] [PubMed] [Google Scholar]
  • 11.Gebre-Mariam T, Neubert R, Schmidt P, Wutzler P, Schmidtke M. Antiviral activities of some Ethiopian medicinal plants used for the treatment of dermatological disorders. J Ethnopharmacol. 2006;104(1–2):182–187. doi: 10.1016/j.jep.2005.08.071. [DOI] [PubMed] [Google Scholar]
  • 12.Srinivasan D, Nathan S, Suresh T, Perumalsamy PL. Antimicrobial activity of certain Indian medicinal plants used in folkloric medicine. J Ethnopharmacol. 2001;74(3):217–220. doi: 10.1016/S0378-8741(00)00345-7. [DOI] [PubMed] [Google Scholar]
  • 13.Kumar VP, Chauhan NS, Padh H, Rajani M. Search for antibacterial and antifungal agents from selected Indian medicinal plants. J Ethnopharmacol. 2006;107(2):182–188. doi: 10.1016/j.jep.2006.03.013. [DOI] [PubMed] [Google Scholar]
  • 14.Gorsi M. Antimicrobial activity of some medicinal plants of Muzaffarabad. Hamdard Medicus. 2005;48:27–41. [Google Scholar]
  • 15.Spiewak R. Occupational skin diseases among farmers. Lublin: Occupational and Para-Occupational Diseases in Agriculture Institute of Agricultural Medicine; 2000. pp. 42–152. [Google Scholar]
  • 16.Mahé A, Faye O, N'Diaye HT, Ly F, Konare H, Keita S, Traoré A, Hay R. Definition of an algorithm for the management of common skin diseases at primary health care level in sub-Saharan Africa. Trans R Soc Trop Med Hyg. 2005;99(1):39–47. doi: 10.1016/j.trstmh.2004.03.008. [DOI] [PubMed] [Google Scholar]
  • 17.Neamsuvan O, Kama A, Salaemae A, Leesen S, Waedueramae N. A survey of herbal formulas for skin diseases from Thailand’s three southern border provinces. J Herbal Med. 2015;5(4):190–198. doi: 10.1016/j.hermed.2015.09.004. [DOI] [Google Scholar]
  • 18.Garnatje T, Peñuelas J, Vallès J. Ethnobotany, phylogeny, and ‘omics’ for human health and food security. Trends Plant Sci. 2017;22(3):187–191. doi: 10.1016/j.tplants.2017.01.001. [DOI] [PubMed] [Google Scholar]
  • 19.Yang L, Ahmed S, Stepp JR, Mi K, Zhao Y, Ma J, Liang C, Pei S, Huai H, Xu G. Comparative homegarden medical ethnobotany of Naxi healers and farmers in northwestern Yunnan, China. J Ethnobiol Ethnomed. 2014;10(1):6. doi: 10.1186/1746-4269-10-6. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 20.Eddouks M, Bidi A, El Bouhali B, Hajji L, Zeggwagh NA. Antidiabetic plants improving insulin sensitivity. J Pharm Pharmacol. 2014;66(9):1197–1214. doi: 10.1111/jphp.12243. [DOI] [PubMed] [Google Scholar]
  • 21.Sunmonu Taofik O., Afolayan Anthony J. Evaluation of Antidiabetic Activity and Associated Toxicity ofArtemisia afraAqueous Extract in Wistar Rats. Evidence-Based Complementary and Alternative Medicine. 2013;2013:1–8. doi: 10.1155/2013/929074. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 22.Saikia AP, Ryakala VK, Sharma P, Goswami P, Bora U. Ethnobotany of medicinal plants used by Assamese people for various skin ailments and cosmetics. J Ethnopharmacol. 2006;106(2):149–157. doi: 10.1016/j.jep.2005.11.033. [DOI] [PubMed] [Google Scholar]
  • 23.Van Wyk B-E, Gorelik B. The history and ethnobotany of cape herbal teas. S Afr J Bot. 2017;110:18–38. doi: 10.1016/j.sajb.2016.11.011. [DOI] [Google Scholar]
  • 24.Mahwasane S, Middleton L, Boaduo N. An ethnobotanical survey of indigenous knowledge on medicinal plants used by the traditional healers of the Lwamondo area, Limpopo Province, South Africa. S Afr J Bot. 2013;88:69–75. doi: 10.1016/j.sajb.2013.05.004. [DOI] [Google Scholar]
  • 25.Choudhary MS, Mishra N, Upadhyay ST, Upadhyay R. Indigenous knowledge of using medicinal plants in treating skin deceases by Tribal’s in Central Narmada Valley of Madhya Pradesh (India) Bull Environ Pharmacol Life Sciences. 2011;1(1):60–63. [Google Scholar]
  • 26.Mughal SB, Arshad N, Shoaib M, Irum N, Hussnain N. Ethnobotanical literature survey of plants used to cure skin diseases. World Appl Sci J. 2013;27(4):474–478. [Google Scholar]
  • 27.Omwenga E, Hensel A, Shitandi A, Goycoolea F. Ethnobotanical survey of traditionally used medicinal plants for infections of skin, gastrointestinal tract, urinary tract and the oral cavity in Borabu sub-county, Nyamira county, Kenya. J Ethnopharmacol. 2015;176:508–514. doi: 10.1016/j.jep.2015.11.032. [DOI] [PubMed] [Google Scholar]
  • 28.Egharevba R, Ikhatua M. Ethno-medical uses of plants in the treatment of various skin diseases in Ovia North east, Edo state, Nigeria. Res J Agric Biol Sci. 2008;4(1):58–64. [Google Scholar]
  • 29.Njoroge GN, Bussmann RW. Ethnotherapeautic management of skin diseases among the kikuyus of Central Kenya. J Ethnopharmacol. 2007;111(2):303–307. doi: 10.1016/j.jep.2006.11.025. [DOI] [PubMed] [Google Scholar]
  • 30.Süntar I, Akkol EK, Keles H, Yesilada E, Sarker SD, Baykal T. Comparative evaluation of traditional prescriptions from Cichorium intybus L. for wound healing: stepwise isolation of an active component by in vivo bioassay and its mode of activity. J Ethnopharmacol. 2012;143(1):299–309. doi: 10.1016/j.jep.2012.06.036. [DOI] [PubMed] [Google Scholar]
  • 31.Ahmad K, Ahmad M, Weckerle C. Ethnoveterinary medicinal plant knowledge and practice among the tribal communities of Thakht-e-Sulaiman hills, West Pakistan. J Ethnopharmacol. 2015;170:275–283. doi: 10.1016/j.jep.2015.05.022. [DOI] [PubMed] [Google Scholar]
  • 32.Ahmad L, Semotiuk A, Zafar M, Ahmad M, Sultana S, Liu Q-R, Zada MP, Abidin SZU, Yaseen G. Ethnopharmacological documentation of medicinal plants used for hypertension among the local communities of DIR lower, Pakistan. J Ethnopharmacol. 2015;175:138–146. doi: 10.1016/j.jep.2015.09.014. [DOI] [PubMed] [Google Scholar]
  • 33.Bibi T, Ahmad M, Tareen RB, Tareen NM, Jabeen R, Rehman S-U, Sultana S, Zafar M, Yaseen G. Ethnobotany of medicinal plants in district Mastung of Balochistan province-Pakistan. J Ethnopharmacol. 2014;157:79–89. doi: 10.1016/j.jep.2014.08.042. [DOI] [PubMed] [Google Scholar]
  • 34.Kayani S, Ahmad M, Zafar M, Sultana S, Khan MPZ, Ashraf MA, Hussain J, Yaseen G. Ethnobotanical uses of medicinal plants for respiratory disorders among the inhabitants of Gallies–Abbottabad, northern Pakistan. J Ethnopharmacol. 2014;156:47–60. doi: 10.1016/j.jep.2014.08.005. [DOI] [PubMed] [Google Scholar]
  • 35.Bano A, Ahmad M, Zafar M, Sultana S, Rashid S, Khan MA. Ethnomedicinal knowledge of the most commonly used plants from Deosai plateau, Western Himalayas, Gilgit Baltistan, Pakistan. J Ethnopharmacol. 2014;155(2):1046–1052. doi: 10.1016/j.jep.2014.05.045. [DOI] [PubMed] [Google Scholar]
  • 36.Rashid S, Ahmad M, Zafar M, Sultana S, Ayub M, Khan MA, Yaseen G. Ethnobotanical survey of medicinally important shrubs and trees of Himalayan region of Azad Jammu and Kashmir, Pakistan. J Ethnopharmacol. 2015;166:340–351. doi: 10.1016/j.jep.2015.03.042. [DOI] [PubMed] [Google Scholar]
  • 37.Yaseen G, Ahmad M, Sultana S, Alharrasi AS, Hussain J, Zafar M. Ethnobotany of medicinal plants in the Thar Desert (Sindh) of Pakistan. J Ethnopharmacol. 2015;163:43–59. doi: 10.1016/j.jep.2014.12.053. [DOI] [PubMed] [Google Scholar]
  • 38.Shah M, Awan M. Proceedings of International Symposium on Mountains of Pakistan-Protection, Potential and Prospects Organized by Global Change Impact Studies Centre (GCISC), Islamabad. 2002. Plant biodiversity of mountains of Pakistan; p. 2002. [Google Scholar]
  • 39.Rahman IU, Ijaz F, Afzal A, Iqbal Z, Ali N, Khan MA, Afzal M, Muhammad S, Qadir G, Asif M. Graphical dataset on important medicinal plants used for curing dental issues in Manoor Valley, Mansehra, Pakistan. Data Brief. 2016;9:1028–1033. doi: 10.1016/j.dib.2016.11.025. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 40.Malik K, Ahmad M, Zhang G, Rashid N, Zafar M, Sultana S, Shah SN. Traditional plant based medicines used to treat musculoskeletal disorders in northern Pakistan. Eur J Integrative Med. 2018;19:17–64. doi: 10.1016/j.eujim.2018.02.003. [DOI] [Google Scholar]
  • 41.Akhtar N, Rashid A, Murad W, Bergmeier E. Diversity and use of ethno-medicinal plants in the region of swat, North Pakistan. J Ethnobiol Ethnomed. 2013;9(1):1. doi: 10.1186/1746-4269-9-25. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 42.Malik K, Ahmad M, Bussmann RW, Tariq A, Ullah R, Alqahtani AS, Shahat AA, Rashid N, Zafar M, Sultana S. Ethnobotany of anti-hypertensive plants used in northern Pakistan. Front Pharmacol. 2018;9:1-18. [DOI] [PMC free article] [PubMed]
  • 43.Weckerle CS, de Boer HJ, Puri RK, van Andel T, Bussmann RW, Leonti M. Recommended standards for conducting and reporting ethnopharmacological field studies. J Ethnopharmacol. 2018;210:125–132. doi: 10.1016/j.jep.2017.08.018. [DOI] [PubMed] [Google Scholar]
  • 44.Umair M, Altaf M, Abbasi AM. An ethnobotanical survey of indigenous medicinal plants in Hafizabad district, Punjab-Pakistan. PloS one. 2017;12(6):e0177912. doi: 10.1371/journal.pone.0177912. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 45.de Oliveira PC, Braga J. Ethnobotany of Borari-Arapiuns indigenous people, Amazon, Brazil. J Medicinal Plants. 2017;5(1):164–170. [Google Scholar]
  • 46.Kayani S, Ahmad M, Sultana S, Shinwari ZK, Zafar M, Yaseen G, Hussain M, Bibi T. Ethnobotany of medicinal plants among the communities of alpine and sub-alpine regions of Pakistan. J Ethnopharmacol. 2015;164:186–202. doi: 10.1016/j.jep.2015.02.004. [DOI] [PubMed] [Google Scholar]
  • 47.Aburjai T, Natsheh FM. Plants used in cosmetics. Phytother Res. 2003;17(9):987–1000. doi: 10.1002/ptr.1363. [DOI] [PubMed] [Google Scholar]
  • 48.Harsha V, Hebbar S, Shripathi V, Hegde G. Ethnomedicobotany of Uttara Kannada District in Karnataka, India—plants in treatment of skin diseases. J Ethnopharmacol. 2003;84(1):37–40. doi: 10.1016/S0378-8741(02)00261-1. [DOI] [PubMed] [Google Scholar]
  • 49.Lall N, Kishore N. Are plants used for skin care in South Africa fully explored? J Ethnopharmacol. 2014;153(1):61–84. doi: 10.1016/j.jep.2014.02.021. [DOI] [PubMed] [Google Scholar]
  • 50.Afolayan AJ, Grierson DS, Mbeng WO. Ethnobotanical survey of medicinal plants used in the management of skin disorders among the Xhosa communities of the Amathole District, eastern cape, South Africa. J Ethnopharmacol. 2014;153(1):220–232. doi: 10.1016/j.jep.2014.02.023. [DOI] [PubMed] [Google Scholar]
  • 51.Sharma J, Gairola S, Sharma YP, Gaur R. Ethnomedicinal plants used to treat skin diseases by Tharu community of district Udham Singh Nagar, Uttarakhand, India. J Ethnopharmacol. 2014;158:140–206. doi: 10.1016/j.jep.2014.10.004. [DOI] [PubMed] [Google Scholar]
  • 52.Iyer SR. Ethnobotany of certain medicinal plants used by Tribals of India against skin infections. Anc Sci Life. 1992;11(3–4):143. [PMC free article] [PubMed] [Google Scholar]
  • 53.Gul F, Shinwari ZK, Afzal I. Screening of indigenous knowledge of herbal remedies for skin diseases among local communities of North West Punjab, Pakistan. Pakistan J Bot. 2012;5:1609–1616. [Google Scholar]
  • 54.Zari ST, Zari TA. A review of four common medicinal plants used to treat eczema. Journal of Medicinal Plants Research. 2015;9(24):702–711. doi: 10.5897/JMPR2015.5831. [DOI] [Google Scholar]
  • 55.Sharma M: Use of plant based medicaments in treatment of skin diseases. Am J Phytomed Clin Therap. 2014;2:229-41.
  • 56.Chanda S, Baravalia Y. Novel leads from herbal drugs for infectious skin diseases. Curr Res Technol Educ Topics Appl Microbiol Microbial Biotechnol. 2010;1:451–456. [Google Scholar]
  • 57.Grierson D, Afolayan A. Antibacterial activity of some indigenous plants used for the treatment of wounds in the eastern cape, South Africa. J Ethnopharmacol. 1999;66(1):103–106. doi: 10.1016/S0378-8741(98)00202-5. [DOI] [PubMed] [Google Scholar]
  • 58.Otang W, Afolayan A. Antimicrobial and antioxidant efficacy of Citrus limon L. peel extracts used for skin diseases by Xhosa tribe of Amathole District, Eastern Cape, South Africa. S Afr J Bot. 2016;102:46–49. doi: 10.1016/j.sajb.2015.08.005. [DOI] [Google Scholar]
  • 59.Delfan B, Bahmani M, Eftekhari Z, Jelodari M, Saki K, Mohammadi T. Effective herbs on the wound and skin disorders: a ethnobotanical study in Lorestan province, west of Iran. Asian Pacific J Tropical Dis. 2014;4:S938–S942. doi: 10.1016/S2222-1808(14)60762-3. [DOI] [Google Scholar]
  • 60.Rawat S, Singh R, Thakur P, Kaur S, Semwal A. Wound healing agents from medicinal plants: a review. Asian Pac J Trop Biomed. 2012;2(3):S1910–S1917. doi: 10.1016/S2221-1691(12)60520-6. [DOI] [Google Scholar]
  • 61.Roy SK, Mishra PK, Nandy S, Datta R, Chakraborty B. Potential wound healing activity of the different extract of Typhonium trilobatum in albino rats. Asian Pac J Trop Biomed. 2012;2(3):S1477–S1486. doi: 10.1016/S2221-1691(12)60441-9. [DOI] [Google Scholar]
  • 62.Rajan JP, Singh KB, Kumar S, Mishra RK. Trace elements content in the selected medicinal plants traditionally used for curing skin diseases by the natives of Mizoram, India. Asian Pac J Trop Med. 2014;7:S410–S414. doi: 10.1016/S1995-7645(14)60267-4. [DOI] [PubMed] [Google Scholar]
  • 63.Villegas LF, Fernández ID, Maldonado H, Torres R, Zavaleta A, Vaisberg AJ, Hammond GB. Evaluation of the wound-healing activity of selected traditional medicinal plants from Peru. J Ethnopharmacol. 1997;55(3):193–200. doi: 10.1016/S0378-8741(96)01500-0. [DOI] [PubMed] [Google Scholar]
  • 64.Ali-Shtayeh MS, Yaniv Z, Mahajna J. Ethnobotanical survey in the Palestinian area: a classification of the healing potential of medicinal plants. J Ethnopharmacol. 2000;73(1):221–232. doi: 10.1016/S0378-8741(00)00316-0. [DOI] [PubMed] [Google Scholar]
  • 65.Agyare C, Boakye YD, Bekoe EO, Hensel A, Dapaah SO, Appiah T. Review: African medicinal plants with wound healing properties. J Ethnopharmacol. 2016;177:85–100. doi: 10.1016/j.jep.2015.11.008. [DOI] [PubMed] [Google Scholar]
  • 66.Ram AJ, Bhakshu LM, Raju RV. In vitro antimicrobial activity of certain medicinal plants from eastern Ghats, India, used for skin diseases. J Ethnopharmacol. 2004;90(2):353–357. doi: 10.1016/j.jep.2003.10.013. [DOI] [PubMed] [Google Scholar]
  • 67.Chen H-Y, Lin Y-H, Huang J-W, Chen Y-C. Chinese herbal medicine network and core treatments for allergic skin diseases: implications from a nationwide database. J Ethnopharmacol. 2015;168:260–267. doi: 10.1016/j.jep.2015.04.002. [DOI] [PubMed] [Google Scholar]
  • 68.Hussain I, Bano A, Ullah F. Traditional drug therapies from various medicinal plants of central karakoram national park, Gilgit-Baltistan Pakistan. Pak J Bot. 2011;43:79–84. [Google Scholar]
  • 69.Bhat P, Hegde GR, Hegde G, Mulgund GS. Ethnomedicinal plants to cure skin diseases—an account of the traditional knowledge in the coastal parts of Central Western Ghats, Karnataka, India. J Ethnopharmacol. 2014;151(1):493–502. doi: 10.1016/j.jep.2013.10.062. [DOI] [PubMed] [Google Scholar]
  • 70.Ghosh S, Samanta A, Mandal NB, Bannerjee S, Chattopadhyay D. Evaluation of the wound healing activity of methanol extract of Pedilanthus tithymaloides (L.) Poit leaf and its isolated active constituents in topical formulation. J Ethnopharmacol. 2012;142(3):714–722. doi: 10.1016/j.jep.2012.05.048. [DOI] [PubMed] [Google Scholar]
  • 71.Süntar I, Akkol EK, Keles H, Yesilada E, Sarker SD, Arroo R, Baykal T. Efficacy of Daphne oleoides subsp. kurdica used for wound healing: identification of active compounds through bioassay guided isolation technique. J Ethnopharmacol. 2012;141(3):1058–1070. doi: 10.1016/j.jep.2012.04.001. [DOI] [PubMed] [Google Scholar]
  • 72.Silambujanaki P, Chandra CBT, Kumar KA, Chitra V. Wound healing activity of Glycosmis arborea leaf extract in rats. J Ethnopharmacol. 2011;134(1):198–201. doi: 10.1016/j.jep.2010.11.046. [DOI] [PubMed] [Google Scholar]
  • 73.Süntar I, Tatlı II, Akkol EK, Keleş H, Kahraman Ç, Akdemir Z. An ethnopharmacological study on Verbascum species: from conventional wound healing use to scientific verification. J Ethnopharmacol. 2010;132(2):408–413. doi: 10.1016/j.jep.2010.08.004. [DOI] [PubMed] [Google Scholar]
  • 74.Shivhare Y, Singour PK, Patil U, Pawar R. Wound healing potential of methanolic extract of Trichosanthes dioica Roxb (fruits) in rats. J Ethnopharmacol. 2010;127(3):614–619. doi: 10.1016/j.jep.2009.12.015. [DOI] [PubMed] [Google Scholar]
  • 75.Olugbuyiro JA, Abo K, Leigh O. Wound healing effect of Flabellaria paniculata leaf extracts. J Ethnopharmacol. 2010;127(3):786–788. doi: 10.1016/j.jep.2009.10.008. [DOI] [PubMed] [Google Scholar]
  • 76.Schmidt C, Fronza M, Goettert M, Geller F, Luik S, Flores E, Bittencourt C, Zanetti G, Heinzmann B, Laufer S. Biological studies on Brazilian plants used in wound healing. J Ethnopharmacol. 2009;122(3):523–532. doi: 10.1016/j.jep.2009.01.022. [DOI] [PubMed] [Google Scholar]
  • 77.Kumar B, Vijayakumar M, Govindarajan R, Pushpangadan P. Ethnopharmacological approaches to wound healing—exploring medicinal plants of India. J Ethnopharmacol. 2007;114(2):103–113. doi: 10.1016/j.jep.2007.08.010. [DOI] [PubMed] [Google Scholar]
  • 78.Khalil EA, Afifi FU, Al-Hussaini M. Evaluation of the wound healing effect of some Jordanian traditional medicinal plants formulated in Pluronic F127 using mice (Mus musculus) J Ethnopharmacol. 2007;109(1):104–112. doi: 10.1016/j.jep.2006.07.010. [DOI] [PubMed] [Google Scholar]
  • 79.Wang K-H, Lin R-D, Hsu F-L, Huang Y-H, Chang H-C, Huang C-Y, Lee M-H. Cosmetic applications of selected traditional Chinese herbal medicines. J Ethnopharmacol. 2006;106(3):353–359. doi: 10.1016/j.jep.2006.01.010. [DOI] [PubMed] [Google Scholar]
  • 80.Bisi Johnson, M A, Obi, C L, Kambizi, L, Nkomo, M A survey of indigenous herbal diarrhoeal remedies of O.R. Tambo district, Eastern Cape Province, South Africa. African Journal of Biotechnology. 2010;9(8):1245–1254. doi: 10.5897/AJB09.1475. [DOI] [Google Scholar]
  • 81.Tadeg H, Mohammed E, Asres K, Gebre-Mariam T. Antimicrobial activities of some selected traditional Ethiopian medicinal plants used in the treatment of skin disorders. J Ethnopharmacol. 2005;100(1):168–175. doi: 10.1016/j.jep.2005.02.031. [DOI] [PubMed] [Google Scholar]
  • 82.Pieroni A, Quave CL, Villanelli ML, Mangino P, Sabbatini G, Santini L, Boccetti T, Profili M, Ciccioli T, Rampa LG. Ethnopharmacognostic survey on the natural ingredients used in folk cosmetics, cosmeceuticals and remedies for healing skin diseases in the inland marches, Central-Eastern Italy. J Ethnopharmacol. 2004;91(2):331–344. doi: 10.1016/j.jep.2004.01.015. [DOI] [PubMed] [Google Scholar]
  • 83.Rashed A, Afifi F, Disi A. Simple evaluation of the wound healing activity of a crude extract of Portulaca oleracea L.(growing in Jordan) in Mus musculus JVI-1. J Ethnopharmacol. 2003;88(2):131–136. doi: 10.1016/S0378-8741(03)00194-6. [DOI] [PubMed] [Google Scholar]
  • 84.Islam MK, Saha S, Mahmud I, Mohamad K, Awang K, Uddin SJ, Rahman MM, Shilpi JA. An ethnobotanical study of medicinal plants used by tribal and native people of Madhupur forest area, Bangladesh. J Ethnopharmacol. 2014;151(2):921–930. doi: 10.1016/j.jep.2013.11.056. [DOI] [PubMed] [Google Scholar]
  • 85.Jirovetz L, Buchbauer G, Stoyanova AS, Georgiev EV, Damianova ST. Composition, quality control, and antimicrobial activity of the essential oil of long-time stored dill (Anethum graveolens L.) seeds from Bulgaria. J Agric Food Chem. 2003;51(13):3854–3857. doi: 10.1021/jf030004y. [DOI] [PubMed] [Google Scholar]
  • 86.Kaur GJ, Arora DS. Antibacterial and phytochemical screening of Anethum graveolens, Foeniculum vulgare and Trachyspermum ammi. BMC Complement Altern Med. 2009;9(1):30. doi: 10.1186/1472-6882-9-30. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 87.Suresh K. Antimicrobial and Phytochemical Investigation of the Leaves of Carica papaya L., Cynodon dactylon (L.) Pers., Euphorbia hirta L., Melia azedarach L. and Psidium guajava L. Ethnobotanical Leaflets. 2008;2008(1):157. [Google Scholar]
  • 88.Dande P, Khan A. Evaluation of wound healing potential of Cynodon dactylon. Asian J Pharm Clin Res. 2012;5(3):161–164. [Google Scholar]
  • 89.Khan Usman Ali, Rahman Hazir, Niaz Zeeshan, Qasim Muhammad, Khan Jafar, Tayyaba, Rehman Bushra. Antibacterial activity of some medicinal plants against selected human pathogenic bacteria. European Journal of Microbiology and Immunology. 2013;3(4):272–274. doi: 10.1556/EuJMI.3.2013.4.6. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 90.Ruby K, Chauhan R, Sharma S, Dwivedi J. Polypharmacological activities of Bergenia species. Int J Pharm Pharmaceutical Sci. 2012;1:100–109. [Google Scholar]
  • 91.Mubashir S, Shah WA. Phytochemical and pharmacological review profile of Adiantum venustum. Int J Pharm Tech Res. 2011;3:827–830. [Google Scholar]
  • 92.Parekh J, Chanda S: In-vitro antimicrobial activities of extracts of Launaea procumbens roxb.(Labiateae), Vitis vinifera l.(Vitaceae) and Cyperus rotundus l.(Cyperaceae. Afr J Biomed Res. 2006;9(2):89-93.
  • 93.Mahesh B, Satish S. Antimicrobial activity of some important medicinal plant against plant and human pathogens. World J Agric Sci. 2008;4(5):839–843. [Google Scholar]
  • 94.Yadav UC, Baquer NZ. Pharmacological effects of Trigonella foenum-graecum L. in health and disease. Pharm Biol. 2014;52(2):243–254. doi: 10.3109/13880209.2013.826247. [DOI] [PubMed] [Google Scholar]
  • 95.Riaz M, Zia-Ul-Haq M, Jaafar HZ. Common mullein, pharmacological and chemical aspects. Rev Bras. 2013;23(6):948–959. [Google Scholar]
  • 96.Cho JY, Baik KU, Jung JH, Park MH. In vitro anti-inflammatory effects of cynaropicrin, a sesquiterpene lactone, from Saussurea lappa. Eur J Pharmacol. 2000;398(3):399–407. doi: 10.1016/S0014-2999(00)00337-X. [DOI] [PubMed] [Google Scholar]
  • 97.Gochev V, Dobreva A, Girova T, Stoyanova A. Antimicrobial activity of essential oil from Rosa alba. Biotechnol Biotechnol Equipment. 2010;24(sup1):512–515. doi: 10.1080/13102818.2010.10817892. [DOI] [Google Scholar]
  • 98.Geshnizjany N, Ramezanian A, Khosh-Khui M. Postharvest life of cut gerbera (Gerbera jamesonii) as affected by nano-silver particles and calcium chloride. Int J Horticultural Sci Technol. 2014;1(2):171–180. [Google Scholar]
  • 99.Nisar M, Khan I, Ahmad B, Ali I, Ahmad W, Choudhary MI. Antifungal and antibacterial activities of Taxus wallichiana Zucc. J Enzyme Inhibition Medicinal Chem. 2008;23(2):256–260. doi: 10.1080/14756360701505336. [DOI] [PubMed] [Google Scholar]
  • 100.Ashraf Z, Muhammad A, Imran M, Tareq AH. In vitro antibacterial and antifungal activity of methanol, chloroform and aqueous extracts of Origanum vulgare and their comparative analysis. Int J Organic Chemistry. 2011;1(04):257. doi: 10.4236/ijoc.2011.14037. [DOI] [Google Scholar]
  • 101.Shahidi Bonjar G, Aghighi S, Karimi Nik A. Antibacterial and antifungal survey in plants used in indigenous herbal-medicine of south east regions of Iran. J Biol Sci. 2004;4(3):405–412. doi: 10.3923/jbs.2004.405.412. [DOI] [Google Scholar]
  • 102.Khan RA, Khan MR, Sahreen S, Bokhari J. Antimicrobial and phytotoxic screening of various fractions of Sonchus asper. Afr J Biotechnol. 2010;9(25):3883–3887. [Google Scholar]
  • 103.Yiğit D, Yiğit N, Mavi A. Antioxidant and antimicrobial activities of bitter and sweet apricot (Prunus armeniaca L.) kernels. Braz J Med Biol Res. 2009;42(4):346–352. doi: 10.1590/S0100-879X2009000400006. [DOI] [PubMed] [Google Scholar]
  • 104.Jagessar R, Mohamed A, Gomes G. An evaluation of the antibacterial and antifungal activity of leaf extracts of Momordica Charantia against Candida albicans, Staphylococcus aureus and Escherichia coli. Nat Sci. 2008;6(1):1–14. [Google Scholar]
  • 105.Singh R, Dar S, Sharma P. Antibacterial activity and toxicological evaluation of semi purified hexane extract of Urtica dioica leaves. Res J Med Plants. 2012;6(2):123–135. doi: 10.3923/rjmp.2012.123.135. [DOI] [Google Scholar]
  • 106.Hadizadeh I., Peivastegan B., Kolahi M. Antifungal Activity of Nettle (Urtica dioica L.), Colocynth (Citrullus colocynthis L. Schrad), Oleander (Nerium oleander L.) and Konar (Ziziphus spina-christi L.) Extracts on Plants Pathogenic Fungi. Pakistan Journal of Biological Sciences. 2009;12(1):58–63. doi: 10.3923/pjbs.2009.58.63. [DOI] [PubMed] [Google Scholar]
  • 107.Pirzada A, Shaikh W, Usmanghani K, Mohiuddin E. Antifungal activity of Dodonaea viscosa Jacq extract on pathogenic fungi isolated from super ficial skin infection. Pak J Pharm Sci. 2010;23:89-93. [PubMed]
  • 108.Kumar V, Tyagi D. Antifungal activity evaluation of different extracts of Bergenia stracheyi. Int J Curr Microbiol App Sci. 2013;2(7):69–78. [Google Scholar]
  • 109.Cruiokshank I, Perrin DR. Studies on Prytoalexins III. The isolation, assay, and general properties of a Phytoalexin from Pisum Sativum L. Aust J Biol Sci. 1961;14(3):336–348. doi: 10.1071/BI9610336. [DOI] [Google Scholar]
  • 110.Sindhia V, Bairwa R. Plant review: Butea monosperma. Int J Pharmaceutical Clin Res. 2010;2(2):90–94. [Google Scholar]
  • 111.Namsa ND, Tag H, Mandal M, Kalita P, Das A. An ethnobotanical study of traditional anti-inflammatory plants used by the Lohit community of Arunachal Pradesh, India. J Ethnopharmacol. 2009;125(2):234–245. doi: 10.1016/j.jep.2009.07.004. [DOI] [PubMed] [Google Scholar]
  • 112.Manasa K, Kuppast I, Kumar MK, Akshara K. A review on Polygonum chinensis. Res J Pharmacol Pharmacodynamics. 2016;8(4):185. doi: 10.5958/2321-5836.2016.00034.3. [DOI] [Google Scholar]
  • 113.B. Aggarwal Bharat, Prasad Sahdeo, Reuter Simone, Kannappan Ramaswamy, R. Yadav Vivek, Park Byoungduck, Hye Kim Ji, C. Gupta Subash, Phromnoi Kanokkarn, Sundaram Chitra, Prasad Seema, M. Chaturvedi Madan, Sung Bokyung. Identification of Novel Anti-inflammatory Agents from Ayurvedic Medicine for Prevention of Chronic Diseases: “Reverse Pharmacology” and “Bedside to Bench” Approach. Current Drug Targets. 2011;12(11):1595–1653. doi: 10.2174/138945011798109464. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 114.Nissen L, Zatta A, Stefanini I, Grandi S, Sgorbati B, Biavati B, Monti A. Characterization and antimicrobial activity of essential oils of industrial hemp varieties (Cannabis sativa L.) Fitoterapia. 2010;81(5):413–419. doi: 10.1016/j.fitote.2009.11.010. [DOI] [PubMed] [Google Scholar]
  • 115.Ravn H, Brimer L. Structure and antibacterial activity of plantamajoside, a caffeic acid sugar ester from Plantago major subs major. Phytochemistry. 1988;27(11):3433–3437. doi: 10.1016/0031-9422(88)80744-1. [DOI] [Google Scholar]
  • 116.Shabbir A, Shahzad M, Arfat Y, Ali L, Aziz RS, Murtaza G, Waqar SA. Berberis lycium Royle: a review of its traditional uses, phytochemistry and pharmacology. Afr J Pharm Pharmacol. 2012;6(31):2346–2353. doi: 10.5897/AJPP12.927. [DOI] [Google Scholar]
  • 117.Borchardt JR, Wyse DL, Sheaffer CC, Kauppi KL, Ehlke RGFNJ, Biesboer DD, Bey RF. Antimicrobial activity of native and naturalized plants of Minnesota and Wisconsin. J Medicinal Plants Res. 2008;2(5):098–110. [Google Scholar]
  • 118.Sarhan WA, Azzazy HM, El-Sherbiny IM. Honey/chitosan nanofiber wound dressing enriched with Allium sativum and Cleome droserifolia: enhanced antimicrobial and wound healing activity. ACS Appl Mater Interfaces. 2016;8(10):6379–6390. doi: 10.1021/acsami.6b00739. [DOI] [PubMed] [Google Scholar]
  • 119.Santas J, Almajano MP, Carbó R. Antimicrobial and antioxidant activity of crude onion (Allium cepa, L.) extracts. Int J Food Sci Technol. 2010;45(2):403–409. doi: 10.1111/j.1365-2621.2009.02169.x. [DOI] [Google Scholar]
  • 120.Parihar P, Parihar L, Bohra A. Antibacterial activity of extracts of Pinus roxburghii Sarg. Bangladesh J Bot. 2006;35(1):85–86. [Google Scholar]
  • 121.Singh A.K, Raghubanshi A.S, Singh J.S. Medical ethnobotany of the tribals of Sonaghati of Sonbhadra district, Uttar Pradesh, India. Journal of Ethnopharmacology. 2002;81(1):31–41. doi: 10.1016/S0378-8741(02)00028-4. [DOI] [PubMed] [Google Scholar]
  • 122.Pereira AP, Ferreira IC, Marcelino F, Valentão P, Andrade PB, Seabra R, Estevinho L, Bento A, Pereira JA. Phenolic compounds and antimicrobial activity of olive (Olea europaea L. cv. Cobrançosa) leaves. Molecules. 2007;12(5):1153–1162. doi: 10.3390/12051153. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 123.Zeb A, Sadiq A, Ullah F, Ahmad S, Ayaz M. Phytochemical and toxicological investigations of crude methanolic extracts, subsequent fractions and crude saponins of Isodon rugosus. Biol Res. 2014;47(1):57. doi: 10.1186/0717-6287-47-57. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 124.Duru ME, Öztürk M, Uğur A, Ceylan Ö. The constituents of essential oil and in vitro antimicrobial activity of Micromeria cilicica from Turkey. J Ethnopharmacol. 2004;94(1):43–48. doi: 10.1016/j.jep.2004.03.053. [DOI] [PubMed] [Google Scholar]
  • 125.Habbal O, Hasson S, El-Hag A, Al-Mahrooqi Z, Al-Hashmi N, Al-Bimani Z, Al-Balushi M, Al-Jabri A. Antibacterial activity of Lawsonia inermis Linn (henna) against Pseudomonas aeruginosa. Asian Pac J Trop Biomed. 2011;1(3):173. doi: 10.1016/S2221-1691(11)60021-X. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 126.Babu PD, Subhasree R. Antimicrobial activities of Lawsonia inermis-a review. Acad J Plant Sci. 2009;2(4):231–232. [Google Scholar]
  • 127.Hisham A, Pathare N, Al-Saidi S. The composition and antimicrobial activity of the essential oil of Teucrium stocksianum subsp. stocksianum leaf from Oman. Nat Prod Commun. 2006;1(3):195–199. [Google Scholar]
  • 128.Yadav H, Yadav M, Jain S, Bhardwaj A, Singh V, Parkash O, Marotta F. Antimicrobial property of a herbal preparation containing Dalbergia sissoo and Datura stramonium with cow urine against pathogenic bacteria. Int J Immunopathol Pharmacol. 2008;21(4):1013–1020. doi: 10.1177/039463200802100427. [DOI] [PubMed] [Google Scholar]
  • 129.P Singh T, M Singh O, B Singh H: Adhatoda vasica Nees: Phytochemical and pharmacological profile. Natural Products J 2011, 1(1):29–39.
  • 130.Gulfraz M, Ahmad A, Asad MJ, Afzal U, Imran M, Anwar P, Zeenat A, Abbasi KS, Maqsood S, Qureshi RU. Antidiabetic activities of leaves and root extracts of Justicia adhatoda Linn against alloxan induced diabetes in rats. Afr J Biotechnol. 2011;10(32):6101. [Google Scholar]
  • 131.Gazuwa S, Makanjuola E, Jaryum K, Kutshik J, Mafulul S. The phytochemical composition of allium Cepal/allium Sativum and the effect of their aqueous extracts (cooked and raw forms) on the lipid profile and other hepatic biochemical parameters in female albino Wistar rats. 2013. [Google Scholar]
  • 132.Ahmad I, Beg AZ. Antimicrobial and phytochemical studies on 45 Indian medicinal plants against multi-drug resistant human pathogens. J Ethnopharmacol. 2001;74(2):113–123. doi: 10.1016/S0378-8741(00)00335-4. [DOI] [PubMed] [Google Scholar]
  • 133.Barnes J, Anderson LA, Phillipson JD. Herbal medicines: a guide for healthcare professionals: pharmaceutical press. 2003. [Google Scholar]
  • 134.Kaur GJ, Arora DS. Bioactive potential of Anethum graveolens, Foeniculum vulgare and Trachyspermum ammi belonging to the family Umbelliferae-current status. J Medicinal Plants Res. 2010;4(2):087–094. [Google Scholar]
  • 135.Akaberi A, Mohammad-Zadeh M, Mirmoosavi Seyed J, Tazari MA, Abarashi A. Effects of the Aqueous Extract of Anethum graveolens Leaves on Seizure Induced by Pentylenetetrazole in Mice. Malaysian J Med Sci. 2013:20(5). [PMC free article] [PubMed]
  • 136.Sonika G, Manubala R, Deepak J. Comparative studies on anti-inflammatory activity of Coriandrum Sativum, Datura stramonium and Azadirachta Indica. Asian J Exp Biol Sci. 2010;1(1):151–154. [Google Scholar]
  • 137.Patel D, Desai S, Devkar R, Ramachandran A. Acute and sub-chronic toxicological evaluation of hydro-methanolic extract of Coriandrum sativum L seeds. EXCLI J. 2012;11:566–575. [PMC free article] [PubMed] [Google Scholar]
  • 138.Kareparamban J, Nikam P, Jadhav A, Kadam V. Ferula foetida “Hing”: a review. Res J Pharm Biol Chem Sci. 2012;3(2):775. [Google Scholar]
  • 139.Barthomeuf C, Lim S, Iranshahi M, Chollet P. Umbelliprenin from ferula szowitsiana inhibits the growth of human M4Beu metastatic pigmented malignant melanoma cells through cell-cycle arrest in G1 and induction of caspase-dependent apoptosis. Phytomedicine. 2008;15(1):103–111. doi: 10.1016/j.phymed.2007.04.001. [DOI] [PubMed] [Google Scholar]
  • 140.de Lima JM, de Freitas FJC, Amorim RNL, Câmara ACL, Batista JS, Soto-Blanco B. Clinical and pathological effects of Calotropis procera exposure in sheep and rats. Toxicon. 2011;57(1):183–185. doi: 10.1016/j.toxicon.2010.11.007. [DOI] [PubMed] [Google Scholar]
  • 141.Rose BN, Prasad NK. Preliminary phytochemical and pharmacognostical evaluation of Carissa spinarum leaves. Asian J Pharmacy Technol. 2013;3(1):30–33. [Google Scholar]
  • 142.Matić D, Wedgwood D. The meanings of focus: the significance of an interpretation-based category in cross-linguistic analysis. J Linguistics. 2013;49(01):127–163. doi: 10.1017/S0022226712000345. [DOI] [Google Scholar]
  • 143.Ren Z-Y, Wu Q-X, Shi Y-P. Flavonoids and triterpenoids from Anaphalis margaritacea. Chem Nat Compd. 2009;45(5):728–730. doi: 10.1007/s10600-009-9411-1. [DOI] [Google Scholar]
  • 144.Kumar AP, Kumud U. Pharmacognostic and phytochemical investigation of aerial parts of Artemisia pallens wall ex. Dc. Pharmacognosy J. 2010;2(9):285–288. doi: 10.1016/S0975-3575(10)80117-8. [DOI] [Google Scholar]
  • 145.Luebke W. Google Patents. 2000. Pet crematory urn. [Google Scholar]
  • 146.Zheng X, Wang W, Piao H, Xu W, Shi H, Zhao C. The genus Gnaphalium L.(Compositae): phytochemical and pharmacological characteristics. Molecules. 2013;18(7):8298–8318. doi: 10.3390/molecules18078298. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 147.Mishra GJ, Reddy M, Rana JS. Isolation of flavonoid constituent from Launaea procumbens Roxb. By preparative HPTLC method. IOSR J Pharm. 2012;2(4):5–11. [Google Scholar]
  • 148.Alkhathlan HZ, Khan M, Abdullah MMS, Al-Mayouf AM, Mousa AA, Al-Othman ZAM. Launaea nudicaulis as a source of new and efficient green corrosion inhibitor for mild steel in acidic medium: a comparative study of two solvent extracts. Int J Electrochem Sci. 2014;9:870–889. [Google Scholar]
  • 149.Yu Rucong, Xu Youping, Zhou Tianjun, Li Jian. Relation between rainfall duration and diurnal variation in the warm season precipitation over central eastern China. Geophysical Research Letters. 2007;34(13):n/a-n/a. doi: 10.1029/2007GL030315. [DOI] [Google Scholar]
  • 150.Ambavade SD, Mhetre NA, Muthal AP, Bodhankar SL. Pharmacological evaluation of anticonvulsant activity of root extract of Saussurea lappa in mice. European Journal of Integrative Medicine. 2009;1(3):131–137. doi: 10.1016/j.eujim.2009.08.159. [DOI] [Google Scholar]
  • 151.Joshi S, Shrestha K, Bajracharya DM. Secondary metabolite variation in some species of Senecio L. from Nepal Himalaya. Pharm Innov. 2013;2(1):70-6.
  • 152.Khan AS, Yu S, Liu H. Deformation induced anisotropic responses of Ti–6Al–4V alloy part II: a strain rate and temperature dependent anisotropic yield criterion. Int J Plast. 2012;38:14–26. doi: 10.1016/j.ijplas.2012.03.013. [DOI] [Google Scholar]
  • 153.Vilela FC, de Mesquita PM, dos Santos-e-Silva L, Alves-da-Silva G, Giusti-Paiva A. Evaluation of the antinociceptive activity of extracts of Sonchus oleraceus L. in mice. J Ethnopharmacol. 2009;124(2):306–310. doi: 10.1016/j.jep.2009.04.037. [DOI] [PubMed] [Google Scholar]
  • 154.Schütz K, Carle R, Schieber A. Taraxacum—a review on its phytochemical and pharmacological profile. J Ethnopharmacol. 2006;107(3):313–323. doi: 10.1016/j.jep.2006.07.021. [DOI] [PubMed] [Google Scholar]
  • 155.Clare BA, Conroy RS, Spelman K. The diuretic effect in human subjects of an extract of Taraxacum officinale folium over a single day. J Altern Complement Med. 2009;15(8):929–934. doi: 10.1089/acm.2008.0152. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 156.Liu J, Xiong Z, Li T, Huang H. Bioaccumulation and ecophysiological responses to copper stress in two populations of Rumex dentatus L. from cu contaminated and non-contaminated sites. Environ Exp Bot. 2004;52(1):43–51. doi: 10.1016/j.envexpbot.2004.01.005. [DOI] [Google Scholar]
  • 157.Wiedenfeld H, Edgar J. Toxicity of pyrrolizidine alkaloids to humans and ruminants. Phytochem Rev. 2011;10(1):137–151. doi: 10.1007/s11101-010-9174-0. [DOI] [Google Scholar]
  • 158.Mushtaq M, Anwer N, Waqar MA, Latif S, Shahid SA, Azam A. Antioxidant, antimicrobial potential and phytochemical attributes of Impatiens edgeworthii. Asian J Chem. 2013;25(17):9800. doi: 10.14233/ajchem.2013.15362. [DOI] [Google Scholar]
  • 159.Suzuki R, Noguchi R, Ota T, Abe M, Miyashita K, Kawada T. Cytotoxic effect of conjugated trienoic fatty acids on mouse tumor and human monocytic leukemia cells. Lipids. 2001;36(5):477–482. doi: 10.1007/s11745-001-0746-0. [DOI] [PubMed] [Google Scholar]
  • 160.Sabir S, Tahir K, Rashid N, Naz S, Masood B, Shah MA, Sualeh M. Phytochemical and antioxidant studies of Berberis lycium. Pak J Pharm Sci. 2013;26(6):1165–1172. [PubMed] [Google Scholar]
  • 161.Arukwe U, Amadi B, Duru M, Agomuo E, Adindu E, Odika P, Lele K, Egejuru L, Anudike J. Chemical composition of Persea americana leaf, fruit and seed. IJRRAS. 2012;11(2):346–349. [Google Scholar]
  • 162.Cheeke PR, Rizk A: Nutritional implications of pyrrolizidine alkaloids as contaminants of foodstuffs. In: Poisonous plant contamination of edible plants. edn.: CRC Press Boca Raton, FL; 1991: 157–174.
  • 163.Ahmed S: Queer phenomenology: orientations, objects, others: Duke University press; 2006.
  • 164.Somova L, Shode F, Ramnanan P, Nadar A. Antihypertensive, antiatherosclerotic and antioxidant activity of triterpenoids isolated from Olea europaea, subspecies africana leaves. J Ethnopharmacol. 2003;84(2):299–305. doi: 10.1016/S0378-8741(02)00332-X. [DOI] [PubMed] [Google Scholar]
  • 165.Saradhi PP, Mohanty P. Proline enhances primary photochemical activities in isolated thylakoid membranes of Brassica juncea by arresting photoinhibitory damage. Biochem Biophys Res Commun. 1991;181(3):1238–1244. doi: 10.1016/0006-291X(91)92071-Q. [DOI] [PubMed] [Google Scholar]
  • 166.Zaidi S, Usmani S, Singh BR, Musarrat J. Significance of Bacillus subtilis strain SJ-101 as a bioinoculant for concurrent plant growth promotion and nickel accumulation in Brassica juncea. Chemosphere. 2006;64(6):991–997. doi: 10.1016/j.chemosphere.2005.12.057. [DOI] [PubMed] [Google Scholar]
  • 167.Shama F, Sherman P. Identification of stimuli controlling the sensory evaluation of viscosity II. Oral methods. J Texture Stud. 1973;4(1):111–118. doi: 10.1111/j.1745-4603.1973.tb00657.x. [DOI] [Google Scholar]
  • 168.Parveen S, Khalid A, Farooq A, Choudhary MI. Acetyl and butyrylcholinesterase-inhibiting triterpenoid alkaloids from Buxus papillosa. Phytochemistry. 2001;58(6):963–968. doi: 10.1016/S0031-9422(01)00332-6. [DOI] [PubMed] [Google Scholar]
  • 169.Audu R, Onubogu C, Nwokoye N: Improving quality in national reference laboratories: the role of SLMTA and mentorship. Afr J Lab Med. 2014; 3 (2), art.# 200, 7 pages. In. [DOI] [PMC free article] [PubMed]
  • 170.Machado Bergamaschi M, Helena Costa Queiroz R, Waldo Zuardi A, Crippa AS. Safety and side effects of cannabidiol, a Cannabis sativa constituent. Curr Drug Saf. 2011;6(4):237–249. doi: 10.2174/157488611798280924. [DOI] [PubMed] [Google Scholar]
  • 171.Schraudolf H. Indole glucosinolates of Capparis spinosa. Phytochemistry. 1989;28(1):259–260. doi: 10.1016/0031-9422(89)85051-4. [DOI] [Google Scholar]
  • 172.Pokharkar Raghunath D, Funde Prasad E, Pingale Shirish S. Pharmacologyonline. 2007. Aqueous extract of Capparis decidua in acute toxicity effects of the rat by use of toothache reliever activity. [Google Scholar]
  • 173.Chatrchyan S, Khachatryan V, Sirunyan AM, Tumasyan A, Adam W, Aguilo E, Bergauer T, Dragicevic M, Erö J, Fabjan C. Observation of a new boson at a mass of 125 GeV with the CMS experiment at the LHC. Physics Letters B. 2012;716(1):30–61. doi: 10.1016/j.physletb.2012.08.021. [DOI] [Google Scholar]
  • 174.Liu XC, Zhou L, Liu ZL. Identification of insecticidal constituents from the essential oil of Valeriana jatamansi Jones against Liposcelis bostrychophila. Badonnel J Chem. 2013;2013:1-6.
  • 175.King TE, Jr, Bradford WZ, Castro-Bernardini S, Fagan EA, Glaspole I, Glassberg MK, Gorina E, Hopkins PM, Kardatzke D, Lancaster L. A phase 3 trial of pirfenidone in patients with idiopathic pulmonary fibrosis. N Engl J Med. 2014;370(22):2083–2092. doi: 10.1056/NEJMoa1402582. [DOI] [PubMed] [Google Scholar]
  • 176.Kokilavani P, Suriyakalaa U, Elumalai P, Abirami B, Ramachandran R, Sankarganesh A, Achiraman S. Antioxidant mediated ameliorative steroidogenesis by Commelina benghalensis L and Cissus quadrangularis L against quinalphos induced male reproductive toxicity. Pesticide Biochem Physiol. 2014;109:18–33. doi: 10.1016/j.pestbp.2014.01.002. [DOI] [PubMed] [Google Scholar]
  • 177.Löffler C, Sahm A, Wray V, Czygan F-C, Proksch P. Soluble phenolic constituents from Cuscuta reflexa and Cuscuta platyloba. Biochem Syst Ecol. 1995;23(2):121–128. doi: 10.1016/0305-1978(95)93846-U. [DOI] [Google Scholar]
  • 178.Mukhopadhyay S, Banerjee SK, Atal C, Lin L-J, Cordell GA. Alkaloids of Corydalis govaniana. J Nat Prod. 1987;50(2):270–272. doi: 10.1021/np50050a033. [DOI] [Google Scholar]
  • 179.Arora V. K., Scinocca J. F., Boer G. J., Christian J. R., Denman K. L., Flato G. M., Kharin V. V., Lee W. G., Merryfield W. J. Carbon emission limits required to satisfy future representative concentration pathways of greenhouse gases. Geophysical Research Letters. 2011;38(5):n/a-n/a. doi: 10.1029/2010GL046270. [DOI] [Google Scholar]
  • 180.Akinci IE, Akinci S. Effect of chromium toxicity on germination and early seedling growth in melon (Cucumis melo L.) Afr J Biotechnol. 2010;9(29):4589–4594. [Google Scholar]
  • 181.Kubde MS, Khadabadi S, Farooqui I, Deore S. Lagenaria siceraria: phytochemistry, pharmacognosy and pharmacological studies. Rep Opin. 2010;2(3):91–98. [Google Scholar]
  • 182.Puri R, Sud R, Khaliq A, Kumar M, Jain S. Gastrointestinal toxicity due to bitter bottle gourd (Lagenaria siceraria)─ a report of 15 cases. Indian J Gastroenterol. 2011;30(5):233–236. doi: 10.1007/s12664-011-0110-z. [DOI] [PubMed] [Google Scholar]
  • 183.Tofighi Z, Alipour F, Yassa N, Hadjiakhoondi A, Hadavinia H, Goodarzy S, Golestani R. Chemical composition and antioxidant activity of Otostegia persica essential oil from Iran. Int J Essential Oil Ther. 2009;3:45–48. [Google Scholar]
  • 184.Kumar A, Gupta R, Mishra RK, Shukla AC, Dikshit A. Pharmaco-phylogenetic investigation of Micromeria biflora Benth and Citrus reticulata Blanco. National Academy Science Letters. 2012;35(4):253–257. doi: 10.1007/s40009-012-0029-7. [DOI] [Google Scholar]
  • 185.Kumar P, Kumar M, Ramanathan A, Tsujimura M. Tracing the factors responsible for arsenic enrichment in groundwater of the middle Gangetic plain, India: a source identification perspective. Environ Geochem Health. 2010;32(2):129–146. doi: 10.1007/s10653-009-9270-5. [DOI] [PubMed] [Google Scholar]
  • 186.Craig AM, Karchesy JJ, Blythe LL, del Pilar González-Hernández M, Swan LR. Toxicity studies on western juniper oil (Juniperus occidentalis) and port-Orford-cedar oil (Chamaecyparis lawsoniana) extracts utilizing local lymph node and acute dermal irritation assays. Toxicol Lett. 2004;154(3):217–224. doi: 10.1016/j.toxlet.2004.08.004. [DOI] [PubMed] [Google Scholar]
  • 187.Aboumarzouk OM, Kata SG, Keeley FX, McClinton S, Nabi G. Extracorporeal shock wave lithotripsy (ESWL) versus ureteroscopic management for ureteric calculi. Cochrane Libr. 2012;38:1-6. 10.1002/14651858.CD006029.pub3. [DOI] [PMC free article] [PubMed]
  • 188.Saab AM, Guerrini A, Sacchetti G, Maietti S, Zeino M, Arend J, Gambari R, Bernardi F, Efferth T. Phytochemical analysis and cytotoxicity towards multidrug-resistant leukemia cells of essential oils derived from Lebanese medicinal plants. Planta Med. 2012;78(18):1927–1931. doi: 10.1055/s-0032-1327896. [DOI] [PubMed] [Google Scholar]
  • 189.Fumeron F, Lamri A, Khalil CA, Jaziri R, Porchay-Baldérelli I, Lantieri O, Balkau B, Marre M. Group DftESotIRSS: dairy consumption and the incidence of hyperglycemia and the metabolic syndrome results from a French prospective study, data from the epidemiological study on the insulin resistance syndrome (DESIR) Diabetes Care. 2011;34(4):813–817. doi: 10.2337/dc10-1772. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 190.Chang K-S, Shin E-H, Park C, Ahn Y-J. Contact and fumigant toxicity of Cyperus rotundus steam distillate constituents and related compounds to insecticide-susceptible and-resistant Blattella germanica. J Med Entomol. 2012;49(3):631–639. doi: 10.1603/ME11060. [DOI] [PubMed] [Google Scholar]
  • 191.Dubey S, Deep P, Singh AK. Phytochemical characterization and evaluation of anticataract potential of seabuckthorn leaf extract. Vet Ophthalmol. 2016;19(2):144–148. doi: 10.1111/vop.12271. [DOI] [PubMed] [Google Scholar]
  • 192.Saggu S, Divekar H, Gupta V, Sawhney R, Banerjee P, Kumar R. Adaptogenic and safety evaluation of seabuckthorn (Hippophae rhamnoides) leaf extract: a dose dependent study. Food Chem Toxicol. 2007;45(4):609–617. doi: 10.1016/j.fct.2006.10.008. [DOI] [PubMed] [Google Scholar]
  • 193.Teslovich TM, Musunuru K, Smith AV, Edmondson AC, Stylianou IM, Koseki M, Pirruccello JP, Ripatti S, Chasman DI, Willer CJ. Biological, clinical and population relevance of 95 loci for blood lipids. Nature. 2010;466(7307):707–713. doi: 10.1038/nature09270. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 194.Dos Santos J, Blanco M, Do Monte F, Russi M, Lanziotti V, Leal L, Cunha G. Sedative and anticonvulsant effects of hydroalcoholic extract of Equisetum arvense. Fitoterapia. 2005;76(6):508–513. doi: 10.1016/j.fitote.2005.04.017. [DOI] [PubMed] [Google Scholar]
  • 195.Basma AA, Zakaria Z, Latha LY, Sasidharan S. Antioxidant activity and phytochemical screening of the methanol extracts of Euphorbia hirta L. Asian Pac J Trop Med. 2011;4(5):386–390. doi: 10.1016/S1995-7645(11)60109-0. [DOI] [PubMed] [Google Scholar]
  • 196.Lu Z-Q, Guan S-H, Li X-N, Chen G-T, Zhang J-Q, Huang H-L, Liu X, Guo D-A. Cytotoxic diterpenoids from Euphorbia helioscopia. J Nat Prod. 2008;71(5):873–876. doi: 10.1021/np0706163. [DOI] [PubMed] [Google Scholar]
  • 197.Rajput A, Kovalenko A, Bogdanov K, Yang S-H, Kang T-B, Kim J-C, Du J, Wallach D. RIG-I RNA helicase activation of IRF3 transcription factor is negatively regulated by caspase-8-mediated cleavage of the RIP1 protein. Immunity. 2011;34(3):340–351. doi: 10.1016/j.immuni.2010.12.018. [DOI] [PubMed] [Google Scholar]
  • 198.Sonkar N, Ganeshpurkar A, Yadav P, Dubey S, Bansal D, Dubey N. An experimetal evaluation of nephroprotective potential of Butea monosperma extract in albino rats. Indian J Pharmacol. 2014;46(1):109. doi: 10.4103/0253-7613.125190. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 199.Akter R, Rahman MA, Rhee CK. Amplified electrochemical detection of a cancer biomarker by enhanced precipitation using horseradish peroxidase attached on carbon nanotubes. Anal Chem. 2012;84(15):6407–6415. doi: 10.1021/ac300110n. [DOI] [PubMed] [Google Scholar]
  • 200.Hajare S, Chandra S, Sharma J, Tandan S, Lal J, Telang A. Anti-inflammatory activity of Dalbergia sissoo leaves. Fitoterapia. 2001;72(2):131–139. doi: 10.1016/S0367-326X(00)00272-0. [DOI] [PubMed] [Google Scholar]
  • 201.Saeed A, Akhter MW, Iqbal M. Removal and recovery of heavy metals from aqueous solution using papaya wood as a new biosorbent. Sep Purif Technol. 2005;45(1):25–31. doi: 10.1016/j.seppur.2005.02.004. [DOI] [Google Scholar]
  • 202.Prasad M. Cadmium toxicity and tolerance in vascular plants. Environ Exp Bot. 1995;35(4):525–545. doi: 10.1016/0098-8472(95)00024-0. [DOI] [Google Scholar]
  • 203.Ahmadiani A, Javan M, Semnanian S, Barat E, Kamalinejad M. Anti-inflammatory and antipyretic effects of Trigonella foenum-graecum leaves extract in the rat. J Ethnopharmacol. 2001;75(2):283–286. doi: 10.1016/S0378-8741(01)00187-8. [DOI] [PubMed] [Google Scholar]
  • 204.Raju J, Patlolla JM, Swamy MV, Rao CV. Diosgenin, a steroid saponin of Trigonella foenum graecum (fenugreek), inhibits azoxymethane-induced aberrant crypt foci formation in F344 rats and induces apoptosis in HT-29 human colon cancer cells. Cancer Epidemiol Biomark Prev. 2004;13(8):1392–1398. [PubMed] [Google Scholar]
  • 205.Ahmad Aamir, Padhye Subhash, Sarkar Fazlul H. Nutraceuticals and Cancer. Dordrecht: Springer Netherlands; 2011. Role of Novel Nutraceuticals Garcinol, Plumbagin and Mangiferin in the Prevention and Therapy of Human Malignancies: Mechanisms of Anticancer Activity; pp. 179–199. [Google Scholar]
  • 206.Vohra A, Kaur P, Satyanarayana T. Production, characteristics and applications of the cell-bound phytase of Pichia anomala. Antonie Van Leeuwenhoek. 2011;99(1):51–55. doi: 10.1007/s10482-010-9498-1. [DOI] [PubMed] [Google Scholar]
  • 207.Zeb A, Milne SJ. Low variation in relative permittivity over the temperature range 25–450 C for ceramics in the system (1− x)[Ba 0.8 ca 0.2 TiO 3]–x [bi (Zn 0.5 Ti 0.5) O 3] J Eur Ceram Soc. 2014;34(7):1727–1732. doi: 10.1016/j.jeurceramsoc.2013.12.009. [DOI] [Google Scholar]
  • 208.Saxena J, Mathela C. Antifungal activity of new compounds from Nepeta leucophylla and Nepeta clarkei. Appl Environ Microbiol. 1996;62(2):702–704. doi: 10.1128/aem.62.2.702-704.1996. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 209.Veitch NC, Grayer RJ. Flavonoids and their glycosides, including anthocyanins. Nat Prod Rep. 2008;25(3):555–611. doi: 10.1039/b718040n. [DOI] [PubMed] [Google Scholar]
  • 210.Ahmad V, Ali Z, Zahid M, Alam N, Saba N, Khan T, Qaisar M, Nisar M. Phytochemical study of Salvia moorcroftiana. Fitoterapia. 2000;71(1):84–85. doi: 10.1016/S0367-326X(99)00109-4. [DOI] [PubMed] [Google Scholar]
  • 211.Brahmachari G, Gorai D. Progress in the research on naturally occurring flavones and flavonols: an overview. Curr Org Chem. 2006;10(8):873–898. doi: 10.2174/138527206776894438. [DOI] [Google Scholar]
  • 212.Rahim-Williams B, Riley JL, Williams AK, Fillingim RB. A quantitative review of ethnic group differences in experimental pain response: do biology, psychology, and culture matter? Pain Med. 2012;13(4):522–540. doi: 10.1111/j.1526-4637.2012.01336.x. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 213.Ali N, Aleem U, Shah SWA, Shah I, Junaid M, Ahmed G, Ali W, Ghias M. Acute toxicity, brine shrimp cytotoxicity, anthelmintic and relaxant potentials of fruits of Rubus fruticosus Agg. BMC Complement Altern Med. 2013;13(1):1. doi: 10.1186/1472-6882-13-1. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 214.Faria N. R., Azevedo R. d. S. d. S., Kraemer M. U. G., Souza R., Cunha M. S., Hill S. C., Theze J., Bonsall M. B., Bowden T. A., Rissanen I., Rocco I. M., Nogueira J. S., Maeda A. Y., Vasami F. G. d. S., Macedo F. L. d. L., Suzuki A., Rodrigues S. G., Cruz A. C. R., Nunes B. T., Medeiros D. B. d. A., Rodrigues D. S. G., Nunes Queiroz A. L., Silva E. V. P. d., Henriques D. F., Travassos da Rosa E. S., de Oliveira C. S., Martins L. C., Vasconcelos H. B., Casseb L. M. N., Simith D. d. B., Messina J. P., Abade L., Lourenco J., Alcantara L. C. J., Lima M. M. d., Giovanetti M., Hay S. I., de Oliveira R. S., Lemos P. d. S., Oliveira L. F. d., de Lima C. P. S., da Silva S. P., Vasconcelos J. M. d., Franco L., Cardoso J. F., Vianez-Junior J. L. d. S. G., Mir D., Bello G., Delatorre E., Khan K., Creatore M., Coelho G. E., de Oliveira W. K., Tesh R., Pybus O. G., Nunes M. R. T., Vasconcelos P. F. C. Zika virus in the Americas: Early epidemiological and genetic findings. Science. 2016;352(6283):345–349. doi: 10.1126/science.aaf5036. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 215.Raja W, Ovais M, Dubey A. Phytochemical screening and antibacterial activity of Lawsonia inermis leaf extract. Medicine. 2013;6:8. [Google Scholar]
  • 216.Kumar P, Singhal VK. Cytology of Caltha palustris L.(Ranunculaceae) from cold regions of Western Himalayas. Cytologia. 2008;73(2):137–143. doi: 10.1508/cytologia.73.137. [DOI] [Google Scholar]
  • 217.Ahmed MF, Rao AS, Ahemad SR, Ibrahim M. Phytochemical studies and antioxidant activity of Melia azedarach Linn leaves by DPPH scavenging assay. Int J Pharm Appl. 2012;3(1):271–276. [Google Scholar]
  • 218.Phua DH, Tsai W-J, Ger J, Deng J-F, Yang C-C. Human Melia azedarach poisoning. Clin Toxicol. 2008;46(10):1067–1070. doi: 10.1080/15563650802310929. [DOI] [PubMed] [Google Scholar]
  • 219.Abbhi V, Joseph L, George M. Phytochemical analysis of fruit extract of Myrsine africana. Int J Pharm Pharm Sci. 2011;3:427–430. [Google Scholar]
  • 220.Asgarpanah J, Ramezanloo F. Chemistry, pharmacology and medicinal properties of Peganum harmala L. Afr J Pharm Pharmacol. 2012;6(22):1573–1580. [Google Scholar]
  • 221.Sobhani AM, Ebrahimi S-A, Mahmoudian M. An in vitro evaluation of human DNA topoisomerase I inhibition by Peganum harmala L. seeds extract and its a-Carboline alkaloids. J Pharm Pharm Sci. 2002;5:19–23. [PubMed] [Google Scholar]
  • 222.Bhardwaj R, Yadav A, Sharma R. Phytochemicals and antioxidant activity in Boerhavia diffusa. Int J Pharm Pharm Sci. 2014;6:344–348. [Google Scholar]
  • 223.Orisakwe OE, Afonne OJ, Chude MA, Obi E, Dioka CE. Sub-chronic toxicity studies of the aqueous extract of Boerhavia diffusa leaves. J Health Sci. 2003;49(6):444–447. doi: 10.1248/jhs.49.444. [DOI] [Google Scholar]
  • 224.Duquesnoy RJ, Askar M. HLAMatchmaker: a molecularly based algorithm for histocompatibility determination. V. Eplet matching for HLA-DR, HLA-DQ, and HLA-DP. Hum Immunol. 2007;68(1):12–25. doi: 10.1016/j.humimm.2006.10.003. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 225.Hadinegoro Sri Rezeki, Arredondo-García Jose Luis, Capeding Maria Rosario, Deseda Carmen, Chotpitayasunondh Tawee, Dietze Reynaldo, Hj Muhammad Ismail H.I., Reynales Humberto, Limkittikul Kriengsak, Rivera-Medina Doris Maribel, Tran Huu Ngoc, Bouckenooghe Alain, Chansinghakul Danaya, Cortés Margarita, Fanouillere Karen, Forrat Remi, Frago Carina, Gailhardou Sophia, Jackson Nicholas, Noriega Fernando, Plennevaux Eric, Wartel T. Anh, Zambrano Betzana, Saville Melanie. Efficacy and Long-Term Safety of a Dengue Vaccine in Regions of Endemic Disease. New England Journal of Medicine. 2015;373(13):1195–1206. doi: 10.1056/NEJMoa1506223. [DOI] [PubMed] [Google Scholar]
  • 226.Jain S, Jain A, Vaidya A, Kumar D, Jain V. Preliminary phytochemical, pharmacognostical and physico-chemical evaluation of Cedrus deodara heartwood. J Pharmacognosy Phytochem. 2014;3(1):91-5.
  • 227.Gross JC, Chaudhary V, Bartscherer K, Boutros M. Active Wnt proteins are secreted on exosomes. Nat Cell Biol. 2012;14(10):1036–1045. doi: 10.1038/ncb2574. [DOI] [PubMed] [Google Scholar]
  • 228.Kaushik D, Kumar A, Kaushik P, Rana A. Analgesic and anti-inflammatory activity of Pinus roxburghii Sarg. Adv Pharmacol Sci. 2012;2012. [DOI] [PMC free article] [PubMed]
  • 229.Maimoona A, Naeem I, Saddiqe Z, Jameel K. A review on biological, nutraceutical and clinical aspects of French maritime pine bark extract. J Ethnopharmacol. 2011;133(2):261–277. doi: 10.1016/j.jep.2010.10.041. [DOI] [PubMed] [Google Scholar]
  • 230.Masood M, Afify LH, Al-Naffouri TY. Efficient coordinated recovery of sparse channels in massive MIMO. IEEE Trans Signal Process. 2015;63(1):104–118. doi: 10.1109/TSP.2014.2369005. [DOI] [Google Scholar]
  • 231.Van den Worm E, Beukelman CJ, Van den Berg AJ, Kroes BH, Labadie RP, Van Dijk H. Effects of methoxylation of apocynin and analogs on the inhibition of reactive oxygen species production by stimulated human neutrophils. Eur J Pharmacol. 2001;433(2):225–230. doi: 10.1016/S0014-2999(01)01516-3. [DOI] [PubMed] [Google Scholar]
  • 232.Chung S-Y, Bloking JT, Chiang Y-M. Electronically conductive phospho-olivines as lithium storage electrodes. Nat Mater. 2002;1(2):123–128. doi: 10.1038/nmat732. [DOI] [PubMed] [Google Scholar]
  • 233.Ruffa M, Ferraro G, Wagner M, Calcagno M, Campos R, Cavallaro L. Cytotoxic effect of argentine medicinal plant extracts on human hepatocellular carcinoma cell line. J Ethnopharmacol. 2002;79(3):335–339. doi: 10.1016/S0378-8741(01)00400-7. [DOI] [PubMed] [Google Scholar]
  • 234.Garg R, Patel RK, Jhanwar S, Priya P, Bhattacharjee A, Yadav G, Bhatia S, Chattopadhyay D, Tyagi AK, Jain M. Gene discovery and tissue-specific transcriptome analysis in chickpea with massively parallel pyrosequencing and web resource development. Plant Physiol. 2011;156(4):1661–1678. doi: 10.1104/pp.111.178616. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 235.Ozaslan M, Didem Karagöz I, Kalender ME, Kilic IH, Sari I, Karagöz A. In vivo antitumoral effect of Plantago major L. extract on Balb/C mouse with Ehrlich ascites tumor. Am J Chin Med. 2007;35(05):841–851. doi: 10.1142/S0192415X07005314. [DOI] [PubMed] [Google Scholar]
  • 236.Butler AD, Wynter M, Medina VF, Bednar AJ. Depleted uranium toxicity, accumulation, and uptake in Cynodon dactylon (Bermuda) and Aristida purpurea (purple Threeawn) Bull Environ Contam Toxicol. 2016;96(6):714–719. doi: 10.1007/s00128-016-1784-9. [DOI] [PubMed] [Google Scholar]
  • 237.Ratan P, Kothiyal P. Fagopyrum esculentum Moench (common buckwheat) edible plant of Himalayas: a review. Asian J Pharmacy Life Sci ISSN. 2011;2231:4423. [Google Scholar]
  • 238.Ahmed MJ, Murtaza G. A study of medicinal plants used as ethnoveterinary: harnessing potential phytotherapy in Bheri, district Muzaffarabad (Pakistan) J Ethnopharmacol. 2015;159:209–214. doi: 10.1016/j.jep.2014.11.016. [DOI] [PubMed] [Google Scholar]
  • 239.Nkuété AH, Migliolo L, Wabo HK, Tane P, Franco OL. Evaluation of multiple functions of Polygonum genus compounds. European Journal of Medicinal Plants. 2015;6(1):1. doi: 10.9734/EJMP/2015/15134. [DOI] [Google Scholar]
  • 240.Tynybekov B, Litvinenko Y, Mukanova G, Satybaldiyeva G, Baimurzayev N, Ablaikhanova N, Kuatbayev A, Sharakhmetov S. Phytochemical investigation of the roots of Rumex Confertus W. grown in the culture. World Appl Sci J. 2013;26(7):941–944. [Google Scholar]
  • 241.Getie M, Gebre-Mariam T, Rietz R, Höhne C, Huschka C, Schmidtke M, Abate A, Neubert R. Evaluation of the anti-microbial and anti-inflammatory activities of the medicinal plants Dodonaea viscosa, Rumex nervosus and Rumex abyssinicus. Fitoterapia. 2003;74(1–2):139–143. doi: 10.1016/S0367-326X(02)00315-5. [DOI] [PubMed] [Google Scholar]
  • 242.Ydyrys A, Mukhitdinov N, Abibulla A, Tynybekov B, Akhmetova A, Karime A. The States of Coenpopulations of endemic, relict and rare species of plant Limonium michelsonii and their protection. World Appl Sci J. 2013;26(7):934–940. [Google Scholar]
  • 243.LEHOUfcROU H: Plant invasions in the rangelands of the isoclimatic mediterranean zone. Biogeography of Mediterranean Invasions 1991:393.
  • 244.Ahmed Z, Wang Y, Ahmad A, Khan ST, Nisa M, Ahmad H, Afreen A. Kefir and health: a contemporary perspective. Crit Rev Food Sci Nutr. 2013;53(5):422–434. doi: 10.1080/10408398.2010.540360. [DOI] [PubMed] [Google Scholar]
  • 245.Zou YP, Tan CH, Wang BD, Zhu DY, Kim SK. Chemical constituents from Myrsine africana L. Helvetica Chimica Acta. 2008;91(11):2168–2173. doi: 10.1002/hlca.200890234. [DOI] [Google Scholar]
  • 246.Zheng C, Hu C, Ma X, Peng C, Zhang H, Qin L. Cytotoxic phenylpropanoid glycosides from Fagopyrum tataricum (L.) Gaertn. Food Chem. 2012;132(1):433–438. doi: 10.1016/j.foodchem.2011.11.017. [DOI] [PubMed] [Google Scholar]
  • 247.Sharma P, Chauhan N, Lal B, Husaini A, Teixeira da Silva J: Conservation of phytodiversity of paravti valley in northwestern Himalaya of Himachal Pradesh India. Medicinal and aromatic pPlant science and biotechnology (medicinal plants of the Himalaya: advances and insights, special issue). Medicinal Aromatic Plant Sci Biotechnol 2010, 4(1):47–63.
  • 248.Brahmachari G, Mondal S, Chatterjee D, Brahmachari A. Phytochemicals and biological activities of Adiantum species. J Sci Ind Res. 2003;62(12):1119–1130. [Google Scholar]
  • 249.Srivastava V, Mishra S, Rastogi R. Non-Newtonian arterial blood flow through an overlapping stenosis. Appl Appl Math. 2010;5(1):225–238. [Google Scholar]
  • 250.Shyaula SL. Phytochemicals, traditional uses and processing of Aconitum species in Nepal. Nepal J Sci Technol. 2012;12:171–178. doi: 10.3126/njst.v12i0.6496. [DOI] [Google Scholar]
  • 251.Begum S, AbdEIslam NM, Adnan M, Tariq A, Yasmin A, Hameed R. Ethnomedicines of highly utilized plants in the temperate Himalayan region. African J Traditional Complementary Alternative Med. 2014;11(3):132–142. doi: 10.4314/ajtcam.v11i3.20. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 252.Phukan P, Bawari M, Sengupta M. Promising neuroprotective plants from NORTH-East India. Int J Pharm Pharm Sci. 2015;7(3):28–39. [Google Scholar]
  • 253.Merfort I, Wray V, Barakat H, Hussein S, Nawwar M, Willuhn G. Flavonol triglycosides from seeds of Nigella sativa. Phytochemistry. 1997;46(2):359–363. doi: 10.1016/S0031-9422(97)00296-3. [DOI] [Google Scholar]
  • 254.Ramadan MF. Nutritional value, functional properties and nutraceutical applications of black cumin (Nigella sativa L.): an overview. Int J Food Sci Technol. 2007;42(10):1208–1218. doi: 10.1111/j.1365-2621.2006.01417.x. [DOI] [Google Scholar]
  • 255.Sultana A, Nakanishi A, Roy B, Mizunoya W, Tatsumi R, Ito T, Tabata S, Rashid H, Katayama S, Ikeuchi Y. Quality improvement of frozen and chilled beef biceps femoris with the application of salt-bicarbonate solution. Asian Australasian J Animal Sci. 2008;21(6):903. doi: 10.5713/ajas.2008.70544. [DOI] [Google Scholar]
  • 256.Roussos ET, Condeelis JS, Patsialou A. Chemotaxis in cancer. Nat Rev Cancer. 2011;11(8):573–587. doi: 10.1038/nrc3078. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 257.Vardi N, Parlakpinar H, Ates B, Cetin A, Otlu A. The protective effects of Prunus armeniaca L (apricot) against methotrexate-induced oxidative damage and apoptosis in rat kidney. J Physiol Biochem. 2013;69(3):371–381. doi: 10.1007/s13105-012-0219-2. [DOI] [PubMed] [Google Scholar]
  • 258.Cantin NE, van Oppen MJ, Willis BL, Mieog JC, Negri AP. Juvenile corals can acquire more carbon from high-performance algal symbionts. Coral Reefs. 2009;28(2):405–414. doi: 10.1007/s00338-009-0478-8. [DOI] [Google Scholar]
  • 259.Noratto G, Porter W, Byrne D, Cisneros-Zevallos L. Polyphenolics from peach (Prunus persica var. rich lady) inhibit tumor growth and metastasis of MDA-MB-435 breast cancer cells in vivo. J Nutr Biochem. 2014;25(7):796–800. doi: 10.1016/j.jnutbio.2014.03.001. [DOI] [PubMed] [Google Scholar]
  • 260.Chaturvedula VSP, Prakash I. Isolation of Stigmasterol and β-Sitosterol from the dichloromethane extract of Rubus suavissimus. 2012. [Google Scholar]
  • 261.Paredes-López O, Cervantes-Ceja ML, Vigna-Pérez M, Hernández-Pérez T. Berries: improving human health and healthy aging, and promoting quality life—a review. Plant Foods Hum Nutr. 2010;65(3):299–308. doi: 10.1007/s11130-010-0177-1. [DOI] [PubMed] [Google Scholar]
  • 262.Kamnaksh A, Kovesdi E, Kwon S-K, Wingo D, Ahmed F, Grunberg NE, Long J, Agoston DV. Factors affecting blast traumatic brain injury. J Neurotrauma. 2011;28(10):2145–2153. doi: 10.1089/neu.2011.1983. [DOI] [PubMed] [Google Scholar]
  • 263.Ibrar M, Muhammad N, Khan A. Chemical composition and biological screening of essential oils of Zanthoxylum armatum DC leaves. J Clin Toxicol. 2013;2013:1-6.
  • 264.Gabriele B, Fazio A, Dugo P, Costa R, Mondello L. Essential oil composition of Citrus medica L. cv. Diamante (diamante citron) determined after using different extraction methods. J Sep Sci. 2009;32(1):99–108. doi: 10.1002/jssc.200800404. [DOI] [PubMed] [Google Scholar]
  • 265.El-Alfy TS, Hetta MH, Yassin NZ, Rahman RFA, Kadry EM: Estrogenic activity of Citrus medica L. leaves growing in Egypt. J Appl Pharmaceutical Sci 2012, 2(8):18.
  • 266.Ekwenye UN, Okorie CF. Antibacterial activity of Tetrapleura tetraptera TAUB. Pod extracts. Int J Pharma Bio Sci. 2010;1:734–741. [Google Scholar]
  • 267.Zewde DK, Jembere B: Evaluation of orange peel citrus sinensis (L) as a source of repellent, toxicant and protectant against Zabrotes subfasciatus (Coleoptera: bruchidae). Momona Ethiopian J Sci. 2010;2(1):61-75.
  • 268.Saleem U, Hussain K, Ahmad M, Irfan Bukhari N, Malik A, Ahmad B: Physicochemical and phytochemical analysis of Euphorbia helioscopia (L.). Pak J Pharm Sci. 2014;27(3):577-85. [PubMed]
  • 269.Abou El Seoud KA, Bibby MC. Shoeib N, Wright CW: evaluation of some Egyptian plant species for in vitro antimycobacterial and cytotoxic activities. Pharm Biol. 2003;41(6):463–465. doi: 10.1076/phbi.41.6.463.17831. [DOI] [Google Scholar]
  • 270.Venkatesh V, Bala H. Technology acceptance model 3 and a research agenda on interventions. Decis Sci. 2008;39(2):273–315. doi: 10.1111/j.1540-5915.2008.00192.x. [DOI] [Google Scholar]
  • 271.Arun M, Asha V. Gastroprotective effect of Dodonaea viscosa on various experimental ulcer models. J Ethnopharmacol. 2008;118(3):460–465. doi: 10.1016/j.jep.2008.05.026. [DOI] [PubMed] [Google Scholar]
  • 272.Pokhrel LR, Andersen CP, Rygiewicz PT, Johnson MG. Preferential interaction of Na+ over K+ with carboxylate-functionalized silver nanoparticles. Sci Total Environ. 2014;490:11–18. doi: 10.1016/j.scitotenv.2014.04.120. [DOI] [PubMed] [Google Scholar]
  • 273.Islam M, AZHAR I, USMANGHANI K. Bioactivity evaluation of Bergenia ciliata. Pak J Pharm Sci. 2002;15:15–33. [PubMed] [Google Scholar]
  • 274.Dharmender R, Madhavi T, Reena A, Sheetal A: Simultaneous Quantification of Bergenin,(+)-Catechin, Gallicin and Gallic acid; and Quantification of Î2-Sitosterol using HPTLC from Bergenia ciliata (Haw.) Sternb. Forma ligulata Yeo (Pasanbheda). Pharmaceutica Analytica Acta 2012, 2010.
  • 275.Bashir S, Gilani AH. Antiurolithic effect of Bergenia ligulata rhizome: an explanation of the underlying mechanisms. J Ethnopharmacol. 2009;122(1):106–116. doi: 10.1016/j.jep.2008.12.004. [DOI] [PubMed] [Google Scholar]
  • 276.Chauhan VP, Stylianopoulos T, Martin JD, Popović Z, Chen O, Kamoun WS, Bawendi MG, Fukumura D, Jain RK. Normalization of tumour blood vessels improves the delivery of nanomedicines in a size-dependent manner. Nat Nanotechnol. 2012;7(6):383–388. doi: 10.1038/nnano.2012.45. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 277.ISLAM MR, SHIMIZU N, KIMURA T. Effect of processing conditions on thermal properties of parboiled Rice. Food Sci Technol Res. 2002;8(2):131–136. doi: 10.3136/fstr.8.131. [DOI] [Google Scholar]
  • 278.Mega JL, Braunwald E, Wiviott SD, Bassand J-P, Bhatt DL, Bode C, Burton P, Cohen M, Cook-Bruns N, Fox KA. Rivaroxaban in patients with a recent acute coronary syndrome. N Engl J Med. 2012;366(1):9–19. doi: 10.1056/NEJMoa1112277. [DOI] [PubMed] [Google Scholar]
  • 279.Huxtable RJ. Herbal teas and toxins: novel aspects of pyrrolizidine poisoning in the United States. Perspect Biol Med. 1980;24(1):1–14. doi: 10.1353/pbm.1980.0078. [DOI] [PubMed] [Google Scholar]
  • 280.Banso A, Adeyemo S: Phytochemical screening and antimicrobial assessment of Abutilon mauritianum, Bacopa monnifera and Datura stramonium. Biokemistri. 2006;18(1):39-44.
  • 281.Freye E, Levy J. Pharmacology and abuse of cocaine, amphetamines, ecstasy and related designer drugs: springer. 2009. [Google Scholar]
  • 282.Asharani P, Wu YL, Gong Z, Valiyaveettil S. Toxicity of silver nanoparticles in zebrafish models. Nanotechnology. 2008;19(25):255102. doi: 10.1088/0957-4484/19/25/255102. [DOI] [PubMed] [Google Scholar]
  • 283.Shafaghat H, Najafpour GD, Rezaei SP, Sharifzadeh M. Optimal growth of Saccharomyces cerevisiae (PTCC 24860) on pretreated molasses for the ethanol production: the application of the response surface methodology. Chemical Industry Chem Eng Quarterly/CICEQ. 2010;16(2):199–206. doi: 10.2298/CICEQ100201029S. [DOI] [Google Scholar]
  • 284.Iqbal H: Comparative efficacy of Aloe vera and Tamarix aphylla against Cutaneous leishmaniasis. Int J Basic Med Sci Pharmacy (IJBMSP). 2012;2(2):42-5.
  • 285.Kucukboyaci N, Sener B. Biological activities of lignans from Taxus baccata L. growing in Turkey. J Medicinal Plants Res. 2010;4(12):1136–1140. [Google Scholar]
  • 286.Mahesh A, Jeyachandran R, Cindrella L, Thangadurai D, Veerapur V, Muralidhara Rao D. Hepatocurative potential of sesquiterpene lactones of Taraxacum officinale on carbon tetrachloride induced liver toxicity in mice. Acta Biol Hung. 2010;61(2):175–190. doi: 10.1556/ABiol.61.2010.2.6. [DOI] [PubMed] [Google Scholar]
  • 287.Zaidi A, Schmoeckel M, Bhatti F, Waterworth P, Tolan M, Cozzi E, Chavez G, Langford G, Thiru S, Wallwork J. Life-supporting pig-to-primate renal xenotransplantation using genetically modified donors. Transplantation. 1998;65(12):1584–1590. doi: 10.1097/00007890-199806270-00008. [DOI] [PubMed] [Google Scholar]
  • 288.Heller A, Katakis I, Ye L. Google Patents. 1996. Biosensor including chemically modified enzymes. [Google Scholar]
  • 289.Yang C, Su X, Liu A, Zhang L, Yu A, Xi Y, Zhai G. Advances in clinical study of curcumin. Curr Pharm Des. 2013;19(11):1966–1973. [PubMed] [Google Scholar]
  • 290.Amujoyegbe O, Idu M, Agbedahunsi J, Erhabor J. Ethnomedicinal survey of medicinal plants used in the management of sickle cell disorder in southern Nigeria. J Ethnopharmacol. 2016;185:347–360. doi: 10.1016/j.jep.2016.03.042. [DOI] [PubMed] [Google Scholar]
  • 291.Ahmad M, Khan MPZ, Mukhtar A, Zafar M, Sultana S, Jahan S. Ethnopharmacological survey on medicinal plants used in herbal drinks among the traditional communities of Pakistan. J Ethnopharmacol. 2016;184:154–186. doi: 10.1016/j.jep.2016.02.039. [DOI] [PubMed] [Google Scholar]
  • 292.Khan MPZ, Ahmad M, Zafar M, Sultana S, Ali MI, Sun H. Ethnomedicinal uses of edible wild fruits (EWFs) in Swat Valley, northern Pakistan. J Ethnopharmacol. 2015;173:191–203. doi: 10.1016/j.jep.2015.07.029. [DOI] [PubMed] [Google Scholar]
  • 293.Giday M, Asfaw Z, Woldu Z. Medicinal plants of the Meinit ethnic group of Ethiopia: an ethnobotanical study. J Ethnopharmacol. 2009;124(3):513–521. doi: 10.1016/j.jep.2009.05.009. [DOI] [PubMed] [Google Scholar]
  • 294.Tabuti JR, Kukunda CB, Waako PJ. Medicinal plants used by traditional medicine practitioners in the treatment of tuberculosis and related ailments in Uganda. J Ethnopharmacol. 2010;127(1):130–136. doi: 10.1016/j.jep.2009.09.035. [DOI] [PubMed] [Google Scholar]
  • 295.Lulekal E, Asfaw Z, Kelbessa E, Van Damme P. Ethnomedicinal study of plants used for human ailments in Ankober District, North Shewa zone, Amhara region, Ethiopia. J Ethnobiol Ethnomed. 2013;9(1):63. doi: 10.1186/1746-4269-9-63. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 296.C da Costa IB, G Bonfim FP, C Pasa M, V Montero DA: Ethnobotanical survey of medicinal flora in the rural community Rio dos Couros, state of Mato Grosso, Brazil. Boletín Latinoamericano y del Caribe de Plantas Medicinales y Aromáticas 2017, 16(1).
  • 297.Yesilada E, Küpeli E. Clematis vitalba L. aerial part exhibits potent anti-inflammatory, antinociceptive and antipyretic effects. J Ethnopharmacol. 2007;110(3):504–515. doi: 10.1016/j.jep.2006.10.016. [DOI] [PubMed] [Google Scholar]
  • 298.Menković N, Šavikin K, Tasić S, Zdunić G, Stešević D, Milosavljević S, Vincek D. Ethnobotanical study on traditional uses of wild medicinal plants in Prokletije Mountains (Montenegro) J Ethnopharmacol. 2011;133(1):97–107. doi: 10.1016/j.jep.2010.09.008. [DOI] [PubMed] [Google Scholar]
  • 299.Pieroni A, Giusti ME, Quave CL. Cross-cultural ethnobiology in the Western Balkans: medical ethnobotany and ethnozoology among Albanians and Serbs in the Pešter plateau, Sandžak, South-Western Serbia. Human Ecol. 2011;39(3):333. doi: 10.1007/s10745-011-9401-3. [DOI] [Google Scholar]
  • 300.Mati E, de Boer H. Ethnobotany and trade of medicinal plants in the Qaysari market, Kurdish autonomous region, Iraq. J Ethnopharmacol. 2011;133(2):490–510. doi: 10.1016/j.jep.2010.10.023. [DOI] [PubMed] [Google Scholar]
  • 301.Ahmad Mushtaq, Sultana Shazia, Fazl-i-Hadi Syed, ben Hadda Taibi, Rashid Sofia, Zafar Muhammad, Khan Mir, Khan Muhammad Pukhtoon, Yaseen Ghulam. An Ethnobotanical study of Medicinal Plants in high mountainous region of Chail valley (District Swat- Pakistan) Journal of Ethnobiology and Ethnomedicine. 2014;10(1):36. doi: 10.1186/1746-4269-10-36. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 302.Loots DT, van der Westhuizen FH, Botes L. Aloe ferox leaf gel phytochemical content, antioxidant capacity, and possible health benefits. J Agric Food Chem. 2007;55(17):6891–6896. doi: 10.1021/jf071110t. [DOI] [PubMed] [Google Scholar]
  • 303.Choi SW, Son BW, Son YS, Park YI, Lee SK, Chung MH. The wound-healing effect of a glycoprotein fraction isolated from aloe vera. Br J Dermatol. 2001;145(4):535–545. doi: 10.1046/j.1365-2133.2001.04410.x. [DOI] [PubMed] [Google Scholar]
  • 304.Rokaya MB, Münzbergová Z, Timsina B. Ethnobotanical study of medicinal plants from the Humla district of western Nepal. J Ethnopharmacol. 2010;130(3):485–504. doi: 10.1016/j.jep.2010.05.036. [DOI] [PubMed] [Google Scholar]
  • 305.Vitalini S, Tomè F, Fico G. Traditional uses of medicinal plants in Valvestino (Italy) J Ethnopharmacol. 2009;121(1):106–116. doi: 10.1016/j.jep.2008.10.005. [DOI] [PubMed] [Google Scholar]
  • 306.Asadi-Samani M, Moradi M-T, Mahmoodnia L, Alaei S, Asadi-Samani F, Luther T. Traditional uses of medicinal plants to prevent and treat diabetes; an updated review of ethnobotanical studies in Iran. J Nephropathol. 2017;6(3):118. doi: 10.15171/jnp.2017.20. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 307.Adnan M, Bibi R, Mussarat S, Tariq A, Shinwari ZK. Ethnomedicinal and phytochemical review of Pakistani medicinal plants used as antibacterial agents against Escherichia coli. Ann Clin Microbiol Antimicrob. 2014;13(1):40. doi: 10.1186/s12941-014-0040-6. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 308.Leonti M. The future is written: impact of scripts on the cognition, selection, knowledge and transmission of medicinal plant use and its implications for ethnobotany and ethnopharmacology. J Ethnopharmacol. 2011;134(3):542–555. doi: 10.1016/j.jep.2011.01.017. [DOI] [PubMed] [Google Scholar]
  • 309.Procházková D, Boušová I, Wilhelmová N. Antioxidant and prooxidant properties of flavonoids. Fitoterapia. 2011;82(4):513–523. doi: 10.1016/j.fitote.2011.01.018. [DOI] [PubMed] [Google Scholar]
  • 310.Bhatla Satish C. Plant Physiology, Development and Metabolism. Singapore: Springer Singapore; 2018. Secondary Metabolites; pp. 1099–1166. [Google Scholar]
  • 311.Bellik Y, Boukraâ L, Alzahrani HA, Bakhotmah BA, Abdellah F, Hammoudi SM, Iguer-Ouada M. Molecular mechanism underlying anti-inflammatory and anti-allergic activities of phytochemicals: an update. Molecules. 2012;18(1):322–353. doi: 10.3390/molecules18010322. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 312.Ahmad I, Ibrar M, Ali N. Ethnobotanical study of tehsil Kabal, Swat District, KPK. Pak J Bot. 2011;2011:1-9.
  • 313.Zahoor M, Yousaf Z, Aqsa T, Haroon M, Saleh N, Aftab A, Javed S, Qadeer M, Ramazan H. An ethnopharmacological evaluation of Navapind and Shahpur Virkanin district Sheikupura, Pakistan for their herbal medicines. J Ethnobiol Ethnomed. 2017;13(1):27. doi: 10.1186/s13002-017-0151-1. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 314.Alamgeer TA, Rashid M, Malik MNH, Mushtaq MN: Ethnomedicinal Survey of plants of Valley Alladand Dehri, Tehsil Batkhela, District Malakand, Pakistan. Int J Basic Med Sci Pharmacy (IJBMSP). 2013;3(1):61-75.
  • 315.Shah A, Marwat SK, Gohar F, Khan A, Bhatti KH, Amin M, Din NU, Ahmad M, Zafar M. Ethnobotanical study of medicinal plants of semi-tribal area of Makerwal & Gulla Khel (lying between Khyber Pakhtunkhwa and Punjab provinces), Pakistan. 2013. [Google Scholar]
  • 316.Akhtar N, Rashid A, Murad W, Bergmeier E. Diversity and use of ethno-medicinal plants in the region of swat, North Pakistan. J Ethnobiol Ethnomed. 2013;9(1):25. doi: 10.1186/1746-4269-9-25. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 317.Ahmad M, Sultana S, Fazl-i-Hadi S, Ben Hadda T, Rashid S, Zafar M, Khan MA, Khan MPZ, Yaseen G. An ethnobotanical study of medicinal plants in high mountainous region of Chail valley (district swat-Pakistan) J Ethnobiol Ethnomed. 2014;10(1):36. doi: 10.1186/1746-4269-10-36. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 318.Patel YS, Patel R, Mahato AKR, Joshi P. Status and diversity of ethno-medicinal plants of Dhinadhar Hill, Kachchh District, Gujarat. Int Jof Plant Animal Environ Sci. 2013;3(1):265–273. [Google Scholar]
  • 319.Qasim M, Khalid M, Sayyed A, Din I, Hayat K, Jan SA. Phytochemical potentials and medicinal uses of twenty-four selected medicinal plants from Swabi, Pakistan. J Rural Dev Agric. 2016;1(1):49–58. [Google Scholar]
  • 320.Awan MR, Jamal Z, Khan A. Ethno-botanical studies of economically important plants from mountainous region of Gilgit-Baltistan, Pakistan. Sci Tech Dev. 2013;32(4):308–318. [Google Scholar]

Associated Data

This section collects any data citations, data availability statements, or supplementary materials included in this article.

Supplementary Materials

Additional file 1: (615.2KB, docx)

Table S1. Chi-square test χ2 test for gender wise distribution. Figure S1. Schematic representation of medicinal plant parts used prepared by NVivo software for skin diseases in Northern Pakistan. Figure S2. Systematic representation of mode of utilization for skin diseases in Northern Pakistan. (DOCX 615 kb)

Data Availability Statement

Not Applicable.


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