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European Journal of Translational Myology logoLink to European Journal of Translational Myology
. 2017 Dec 5;27(4):7179. doi: 10.4081/ejtm.2017.7179

Mobility disorders and pain, interrelations that need new research concepts and advanced clinical commitments

Sascha Sajer 1,
PMCID: PMC5745518  PMID: 29299226

Abstract

This Perspective will discuss topics recently suggested by Prof. Helmut Kern, Vienna, Austria, to advance the research activities of his team, that is: Topic A, 10 years post RISE; Topic B, New research for new solutions on old research questions; Topic C, Working groups on nerve regeneration, training-parameters of seniors in different ages, muscle adaptation; and studies of connective tissue and cartilage. This Perspective summarizes some of the basic concepts and of the evidence-based tools for developing further translational research activities. Clinically relevant results will ask for continuous interests of Basic and Applied Myologists and for the support during the next five to ten years of public and private granting agencies. All together, they will end in protocols, devices and multidisciplinary managements for persons suffering with muscle denervation, neuromuscular-related or non-related pain and for the increasing population of old, older and oldest senior citizens in Europe and beyond.

Key Words: muscle and pain, proof of concept, muscle wasting, stem cells and muscle regeneration, ex-vivo and in-vivo studies, translational myology, clinical trials

Ethical Publication Statement

Author confirms that he has read the Journal’s position on issues involved in ethical publication and affirms that this report is consistent with the guidelines of the EJTM.

In a recent Commentary in Biology, Engineering, Medicine (BEM), titled “From BAM to BEM, a personal journey through EJTM and Padua Muscle Days”,1 Prof. Ugo Carraro tried to explain how a local community of basic and applied myologists, since long organized as the Interdepartmental Myology Center of the University of Padova, Italy (CIR Myo), was able in recent years to maintain a long term tradition of skeletal muscles studies. In an Editorial recently published in the European Journal of Translational Myology (EJTM),2 he stressed that important articles were published in international high-impact journals by Padua scientists and clinicians and that contributing factors were both a series of dedicated International Conferences held in Euganei Hills and Padua (PaduaMuscleDays - PMD) during the last 20 years and the publication by an International Community of Myologists of more than 100 articles in EJTM during the last four years.3-41 Based upon the strong evidence produced by Home-based Functional Electrical Stimulation (h-bFES) of denervated degenerating muscles (DDM), as validated by the successful European Union (EU) Program: RISE [Use of electrical stimulation to restore standing in paraplegics with long-term DDMs (QLG5-CT-2001-02191)],43-60 the Project RISE-2_Italy was established in Padua University and then extended to the IRCCS Fondazione Ospedale di Venezia-Lido, Italy with the essential support and expert supervision of Prof. Helmut Kern and Colleagues of Vienna, Austria. The opinions of compliant patients were heartening,56 and the extent to which they recovered ability to rise with support and to stand enduringly was indeed remarkable. Thus, Prof. Helmut Kern and Prof. Ugo Carraro hope to be able to convince the attendees of the incoming 2018 Spring PaduaMuscleDays that their bottled messages floating on the ocean of time will not contain the maps to the hidden treasure of Peter Pan’s Captain Hook or to the entrance to the Alibaba’s Cave, but that they will be steps toward the approval of research projects and clinical trials by ethical committees with the support of public and private granting agencies. This was true in the past.43-44 They hope it will be true in the future.

With those goals in mind, this Perspective will discuss the following topics recently suggested by Prof. Helmut Kern for the future research activities of his team: Topic A, 10 years post RISE. Subtopics: A1, Training parameters on denervated degenerating muscles (DDM); A2, Improvement by cell therapy of exhausted muscle fibers in DDM; A3, Stimulation parameter depending on time from SCI and age; A4, Magnetic stimulation; A5, Stimulation during rest or sleeping to prolong the daily stimulation time. Topic B, New research for new solutions on old questions. Subtopics: B1. Common new research projects as ageing is; B2, Translational research of new topics; B3, New research on biomarkers, but only from blood samples, saliva, skin, hairs; Topic C, Working groups on: C1, nerve regeneration; C2, muscle adaptation; C3, studies of connective tissues, including cartilage.

Training parameters of h-bFES for DDM, optimized for age and denervation time: perspective for muscle stimulation during period of resting, in particular, night time

The stimulation parameters applied for eliciting muscle contractions are depending on physiological conditions of the muscle. Of particular importance for electrical stimulation (ES) is whether the connection between the muscle and its innervating nerve is preserved or the muscle remains long-term denervated due to Spinal Cord Injury (SCI) or peripheral nerve lesions. In the latter cases the denervated muscle within few months becomes not responsive to commercial stimulators and undergoes ultrastructural disorganization, while severe atrophy with fibro-fatty degeneration and nuclear clumping appears within 3 and 6 years from nerve discontinuation.43-48 Information on these changes are essential for developing stimulation protocols, since functional activation of denervated muscles requires electrical stimulation with long impulse duration in the range of 20 – 150 (up to 300) msec. Moreover, contrary to innervated muscle where the nerve distributes the action potential, in the denervated muscle an electrical field distribution capable of depolarizing the fibers in almost every part of the muscle has to be achieved. Therefore, to counteract the deterioration of the denervated muscle a therapy concept for home-based electrical stimulation was developed. To carry out the training a stimulator suited to deliver the necessary high-intensity and long duration impulses by new large electrodes was designed.49,50 Specific clinical assessments to monitor the condition of the patient’s muscles and guidelines for training were developed at the Wilhelminenspital Wien, Austria.51,52 The novel therapy concept, together with newly designed devices, was evaluated in the RISE clinical study. After completing a 2-year home-based therapy program the subjects showed a significant increase of muscle mass and myofiber size, improvements of the ultrastructural organization and recovery of tetanic contractility with significant increase in developed muscle force output during electrical stimulation.43,44 EU-approved products (Stimulette den2x) and purpose developed large safety electrodes are now commercially available (Schuhfried, Vienna, Austria).43,53-57

However, even these new tools are effective in preventing or recovering denervated degenerating muscle only if h-bFES starts early than ten years from SCI, with the best results achievable up to 6 years from permanent nerve lesions.43-60

Induced muscle fiber regeneration in permanent denervation of skeletal muscle: Implication for FES of long-term denervated muscles

The differentiation of muscle fibers regenerating in the absence of the nerve is well documented in animal experiments and in muscle biopsies harvested from human patients suffering with permanent long-term denervation.43,44,58,59 During the last twenty years, clinical studies have employed long impulse biphasic electrical stimulation as a first step treatment for humans living with long-term denervated muscles subsequent to SCI. Trophic and functional recovery, from severe atrophy/degeneration due to lower motoneuron damage, occurred in long-term denervated degenerating muscles treated with two years of h-bFES beginning from 1 to 5 years from SCI using purpose-developed muscle stimulator and large electrodes that recently were made commercially available.43,44 This fact has sound foundations on muscle biopsy analyses,43,44-60 and on Quantitative Muscle Color Computed Tomography (QMC-CT) of treated muscles.58-68 On the other hand, the extent of recovery decreases with time elapsed from SCI with poor results after 7 to 10 years from lower motoneuron damage.43,44 If induced-myogenesis,5,69-81 could be modulated in patients during the many months needed to recover tetanic contractility of denervated muscles, the period to achieve functional recovery of long term denervated human muscle by h-bFES will be shortened and possibly obtained also when h-bFES will be started later than ten years from SCI.

Recent advances on conversion (i.e. transdifferentiation, see https://stemcells.nih.gov/info/basics/4.htm)82 of adult differentiated somatic human cells, e.g., surface epithelia and fibroblasts, to fully potential stem cells able to induce and maintain high-level myogenesis, may provide personalized treatments that may open new hope for the vast majority of people in need, i.e., those patients at more than 8 years from SCI.43,44 For more detailed discussion of stem cells potentials, see at: https://stemcells.nih.gov/info.htm a NIH's Stem Cell Reports.83,84

Histopathological analyses of skin in DDM: New options for h-bFES and beyond

The skin is the body’s heaviest sensory organ, accounting for approximately 16% of the body’s weight. Other functions are protection from chemical, physical and biological insults and maintenance of the internal environment.85 Several pathologies are associated to skin changes affecting skin cells and other structural proteins, thickness of the various epidermal layers, inflammatory cells, and amount of water.86 Qualitative and quantitative analysis of several components and properties of the skin are necessary to understand these disorders and to follow-up eventual managements. Previous studies have shown that denervated Quadriceps muscles of patients suffering with complete conus and cauda equina lesions were rescued by two years of home-based functional electrical stimulation (h-bFES) using a new electrical stimulator and very large skin electrodes.43,44 Muscle mass, force, and structure of the stimulated Quadriceps muscles were studied before and after 2 years of h-bFES, using: Computed Tomography (CT), measurements of knee torque during stimulation, and muscle biopsies which were analyzed by light and electron microscopy. To harvest muscle biopsies the overlying skin was also collected and evaluated by histological morphometry of hematoxylin eosin (H-E) and immuno-stained on paraffin-embedded sections. Analysis of the structural characteristics of epidermis, i.e., thickness, morphology of the papillae and content of hairs together with some neural and inflammatory molecular markers were organized. Preliminary results are interesting and stimulate additional analyses to better describe skin adaptation to this peculiar type of electrical stimulation by surface electrodes. Those approaches will offer also new opportunities to study adaptation of the skin to other physical and pharmacological therapies, e.g., based on application of rehabilitation managements through the skin,87 in particular for pain relief.

Candidate biomarkers for testing Cayenne pepper cataplasm (CPC) treatment for low back pain

Herbal cataplasms containing rubefacient substances, such as Cayenne pepper, are commonly used as natural medications to treat painful areas. In this perspective we summarize the effects of a 20-min application of a mixture of Cayenne pepper and kaolin powder cataplasm on healthy subjects. Treatments were evaluated by: cold/hot feeling, blood pressure, body temperature, skin light touch sensation, two-point discrimination, pressure algometry, before and 0/15/30 min after different concentrations of Cayenne pepper. We tested for its safety by measuring changes in circulating levels of inflammatory-related biomarkers. Results confirmed that 5% concentration CPC did not induced a significant increase of circulating inflammatory–related biomarkers (Sarabon N et al., submitted).88-92 Further studies are mandatory to confirm evidence-based efficacy of CPC and of the involved mechanisms of pain relief.

Mitochondrial dynamics, molecular pathways activation and muscle remodeling after Electrical Stimulation in aged human muscle

Age-related sarcopenia is characterized by a progressive loss of muscle mass with decline in specific force. The etiology of sarcopenia is multifactorial and underlying mechanisms are currently not fully elucidated. Physical exercise, including electrical stimulation assisted muscle contraction,93 is known to have beneficial effects on muscle mass and force production.94,95 Alterations of mitochondrial Ca2+ homeostasis regulated by mitochondrial calcium uniporter (MCU) have been recently shown to affect mice muscle trophism in vivo.96 To understand the relevance of MCU-dependent mitochondrial Ca2+ uptake in aging and to investigate the effect of physical exercise on MCU expression and mitochondria dynamics, we analyzed skeletal muscle biopsies from 70-year-old subjects 9 weeks trained with either neuromuscular electrical stimulation (NMES) or leg press. We demonstrated that improved muscle function and structure induced by both trainings are linked to increased protein levels of MCU.97 Ultrastructural analyses by electron microscopy showed remodeling of mitochondrial apparatus in ES-trained muscles that is consistent with an adaptation to physical exercise, a response likely mediated by an increased expression of mitochondrial fusion protein OPA1.98 Altogether these results indicate that the ES-dependent physiological effects on skeletal muscle size and force are associated with changes in mitochondrial-related proteins involved in Ca2+ homeostasis and mitochondrial shape. Indeed, calcium cycling and activation of specific molecular pathways are essential in contraction-induced muscle adaptation, being important regulators of metabolic and Excitation – Transcription Coupling (ETC). An experimental protocol was set-up starting from muscle biopsy sections that can be obtained before and after a period of electrical stimulation on volunteers. By this approach, nuclear localization of specific transcription factors such as NFAT or PGC1α and phosphorylation level of regulative kinases can be compared in a muscle before and after training to study activation of related pathways. Moreover, it was shown that down-stream targets of muscle contraction induced pathways such as Ca2+ handling proteins of the Sarcoplasmic Reticulum are modulated by ES (Mosole et al., submitted manuscript), supporting the conclusion that ES is able to promote fiber remodeling in sedentary seniors.98-102 These results support the clinical findings related to physical activity in elderly and validate ES when seniors can’t or wouldn’t perform volitional exercises.103

Perspectives

In conclusion, the present information summarizes some of the basic concepts and of the evidence-based tools for developing further translational muscle research activities.104-113 Clinically relevant results will ask for continuous interests of Basic and Applied Myologists and for the support during the next five to ten years of granting agencies. We are confident that we will proceed steps by steps toward the approval of our research projects and clinical trials. This was true in the past.43-60 It will be hopefully true in the future. All together our efforts would end in protocols, devices and personalized managements for persons suffering with muscle denervation, neuromuscular–related or non–related pain and for the increasing number of old, older and oldest citizens of Europe and beyond.

Acknowledgments

The author thanks Helmut Kern, Christian Hofer, Stefan Loefler and Sandra Zampieri for comments and critical readings of the typescript. The typescript was sponsored by Physiko- und Rheumatherapie, St. Poelten, Austria and by the A&C M-C Foundation for Translational Myology, Padova, Italy.

List of acronyms

BAM

Basic Applied Myology

BEM

Biology, Engineering, Medicine

CIR Myo

Interdepartmental Myology Center of the University of Padova, Italy

CPC

Cayenne pepper cataplasm

CT

Computed Tomography

DDM

denervated degenerating muscles

EJTM

European Journal of Translational Myology

ES

electrical stimulation

ETC

Excitation–Transcription Coupling

EU

European Union

FES

Functional Electrical Stimulation

h-bFES

home-based Functional Electrical Stimulation

MCU

mitochondrial calcium uniporter

NMES

neuromuscular electrical stimulation

PMD

PaduaMuscleDays

QMC-CT

Quantitative Muscle Color Computed Tomography

RISE

Use of electrical stimulation to restore standing in paraplegics with long-term DDMs (QLG5-CT-2001-02191)]

SCI

Spinal Cord Injury

References

  • 1.Carraro U. From BAM to BEM, a personal journey through EJTM and PaduaMuscleDays. Biol Eng Med 2017; 2(2): 1-2 doi: 10.15761/BEM.1000117. [Google Scholar]
  • 2.Carraro U. 2017Spring PaduaMuscleDays, roots and byproducts. Eur J Transl Myol. 2017;27:6810. doi: 10.4081/ejtm.2017.6810. eCollection 2017 Jun 24. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 3.3 Franzini-Armstrong C. Electron Microscopy: From 2D to 3D Images with Special Reference to Muscle. Eur J Transl Myol 2015;25:4836. doi: 10.4081/ejtm.2015.4836. eCollection 2015 Jan 7. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 4.Samsó M. 3D Structure of the Dihydropyridine Receptor of Skeletal Muscle. Eur J Transl Myol 2015;25:4840. doi: 10.4081/ejtm.2015.4840. eCollection 2015 Jan 7. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 5.Wagenknecht T, Hsieh C, Marko M. Skeletal Muscle Triad Junction Ultrastructure by Focused-Ion-Beam Milling of Muscle and Cryo-Electron Tomography. Eur J Transl Myol 2015;25:4823. doi: 10.4081/ejtm.2015.4823. eCollection 2015 Jan 7. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 6.Baker MR, Fan G, Serysheva II. Single-Particle Cryo-EM of the Ryanodine Receptor Channel in an Aqueous Environment. Eur J Transl Myol 2015;25:4803. doi: 10.4081/ejtm.2015.4803. eCollection 2015 Jan 7. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 7.Jayasinghe ID, Clowsley AH, Munro M, et al. Revealing T-Tubules in Striated Muscle with New Optical Super-Resolution Microscopy Techniquess. Eur J Transl Myol 2014;25:4747. doi: 10.4081/ejtm.2015.4747. eCollection 2015 Jan 7. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 8.Wagenknecht T, Hsieh C, Marko M. Skeletal muscle triad junction ultrastructure by Focused-Ion-Beam milling of muscle and Cryo-Electron Tomography. Eur J Transl Myol 2015;25:49-56. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 9.Baker MR, Fan G, Serysheva II. Single-particle cryo-EM of the ryanodine receptor channel in an aqueous environment. Eur J Transl Myol 2015;25:35-48. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 10.Lavorato M, Gupta PK, Hopkins PM, Franzini-Armstrong C. Skeletal Muscle Microalterations in Patients Carrying Malignant Hyperthermia-Related Mutations of the e-c Coupling Machinery. Eur J Transl Myol 2016;26:6105. doi: 10.4081/ejtm.2016.6105. eCollection 2016 Sep 15. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 11.Coste CA, Mayr W, Bijak M, et al. FES in Europe and Beyond: Current Translational Research. Eur J Transl Myol 2016;26:6369. doi: 10.4081/ejtm.2016.6369. eCollection 2016 Sep 15. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 12.Martorelli S, Cadore EL, Izquierdo M, et al. Strength Training with Repetitions to Failure does not Provide Additional Strength and Muscle Hypertrophy Gains in Young Women. Eur J Transl Myol 2017;27:6339. doi: 10.4081/ejtm.2017.6339. eCollection 2017 Jun 24. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 13.Celes R, Bottaro M, Cadore E, et al. Low-Load High-Velocity Resistance Exercises Improve Strength and Functional Capacity in Diabetic Patients. Eur J Transl Myol 2017;27:6292. doi: 10.4081/ejtm.2017.6292. eCollection 2017 Jun 24. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 14.Gentil P, de Lira CAB, Paoli A, et al. Nutrition, Pharmacological and Training Strategies Adopted by Six Bodybuilders: Case Report and Critical Review. Eur J Transl Myol. 2017 Mar 24;27:6247. doi: 10.4081/ejtm.2017.6247. eCollection 2017 Feb 24. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 15.Andrews B, Shippen J, Armengol M, et al. A Design Method for FES Bone Health Therapy in SCI. Eur J Transl Myol. 2016 Nov 25;26(4):6419. doi: 10.4081/ejtm.2016.6419. eCollection 2016 Sep 15. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 16.Debelle A, Hermans L, Bosquet M, et al. Soft Encapsulation of Flexible Electrical Stimulation Implant: Challenges and Innovations. Eur J Transl Myol. 2016 Nov 25;26(4):6298. doi: 10.4081/ejtm.2016.6298. eCollection 2016 Sep 15. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 17.Laursen CB, Nielsen JF, Andersen OK, Spaich EG. Feasibility of Using Lokomat Combined with Functional Electrical Stimulation for the Rehabilitation of Foot Drop. Eur J Transl Myol 2016;26:6221. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 18.Resquín F, Gonzalez-Vargas J, Ibáñez J, et al. Feedback Error Learning Controller for Functional Electrical Stimulation Assistance in a Hybrid Robotic System for Reaching Rehabilitation. Eur J Transl Myol. 2016 Jul 15;26(3):6164. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 19.Stratton K, Faghri PD. Electrically and Hybrid-Induced Muscle Activations: Effects of Muscle Size and Fiber Type. Eur J Transl Myol 2016;26:6163. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 20.Aksöz EA, Laubacher M, Binder-Macleod S, Hunt KJ. Effect of Stochastic Modulation of Inter-Pulse Interval During Stimulated Isokinetic Leg Extension. Eur J Transl Myol. 2016. Jul 15;26(3):6160. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 21.Guimarães JA, da Fonseca LO, Dos Santos-Couto-Paz CC, et al. Towards Parameters and Protocols to Recommend FES-Cycling in Cases of Paraplegia: A Preliminary Report. Eur J Transl Myol 2016 ;26:6085. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 22.Valtin M, Kociemba K, Behling C, et al. RehaMovePro: A Versatile Mobile Stimulation System for Transcutaneous FES Applications. Eur J Transl Myol 2016;26:6076. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 23.Li Z, Guiraud D, Andreu D, et al. A Hybrid Functional Electrical Stimulation for Real-Time Estimation of Joint Torque and Closed-Loop Control of Muscle Activation. Eur J Transl Myol 2016;26:6064. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 24.Peri E, Ambrosini E, Pedrocchi A, et al. Can FES-Augmented Active Cycling Training Improve Locomotion in Post-Acute Elderly Stroke Patients? Eur J Transl Myol 2016;26:6063. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 25.Oliveira A, Ordonez JS, Vajari DA, et al. Laser-Induced Carbon Pyrolysis of Electrodes for Neural Interface Systems. Eur J Transl Myol 2016;26:6062. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 26.Dali M, Rossel O, Guiraud D. Fast Simulation and Optimization Tool to Explore Selective Neural Stimulation. Eur J Transl Myol 2016;26:6060. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 27.Malešević J, Štrbac M, Isaković M, et al. Evolution of Surface Motor Activation Zones in Hemiplegic Patients During 20 Sessions of FES Therapy with Multi-pad Electrodes. Eur J Transl Myol 2016;26:6059. doi: 10.4081/ejtm.2016.6059. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 28.Muthalib M, Kerr G, Nosaka K, Perrey S. Local Muscle Metabolic Demand Induced by Neuromuscular Electrical Stimulation and Voluntary Contractions at Different Force Levels: A NIRS Study. Eur J Transl Myol 2016;26:6058. doi: 10.4081/ejtm.2016.6058. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 29.Godfraind C, Debelle A, Lonys L, et al. Inductive Powering of Subcutaneous Stimulators: Key Parameters and Their Impact on the Design Methodology. Eur J Transl Myol. 2016 Jun 13;26(2):6040. doi: 10.4081/ejtm.2016.6040. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 30.Tigra W, Guiraud D, Andreu D, et al. Exploring Selective Neural Electrical Stimulation for Upper Limb Function Restoration. Eur J Transl Myol 2016;26:6035. doi: 10.4081/ejtm.2016.6035. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 31.Laubacher M, Aksöz EA, Binder-Macleod S, Hunt KJ. Comparison of Proximally Versus Distally Placed Spatially Distributed Sequential Stimulation Electrodes in a Dynamic Knee Extension Task. Eur J Transl Myol. 2016. Jun 13;26(2):6016. doi: 10.4081/ejtm.2016.6016. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 32.Coletti D, Daou N, Hassani M, et al. Serum Response Factor in Muscle Tissues: From Development to Ageing. Eur J Transl Myol 2016;26:6008. doi: 10.4081/ejtm.2016.6008. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 33.Hiroux C, Vandoorne T, Koppo K, et al. Physical Activity Counteracts Tumor Cell Growth in Colon Carcinoma C26-Injected Muscles: An Interim Report. Eur J Transl Myol 2016;26:5958. doi: 10.4081/ejtm.2016.5958. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 34.Tramonti C, Rossi B, Chisari C. Extensive Functional Evaluations to Monitor Aerobic Training in Becker Muscular Dystrophy: A Case Report. Eur J Transl Myol 2016;26:5873. doi: 10.4081/ejtm.2016.5873. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 35.Ravara B, Gobbo V, Carraro U, et al. Functional Electrical Stimulation as a Safe and Effective Treatment for Equine Epaxial Muscle Spasms: Clinical Evaluations and Histochemical Morphometry of Mitochondria in Muscle Biopsies. Eur J Transl Myol. 2015;25:4910. doi: 10.4081/ejtm.2015.4910. eCollection 2015 Mar 11. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 36.Hugosdóttir R, Jónasson SÞ, Sigþórsson H, Helgason Þ. Feasibility Study of a Novel Electrode Concept for a Neuroprosthesis for Augmentation of Impaired Finger Functions. Eur J Transl Myol 2014;24:4671. doi: 10.4081/ejtm.2014.4671. eCollection 2014 Sep 23. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 37.Helgason T, Gunnlaugsdottir KI. Application of Acoustic-Electric Interaction for Neuro-Muscular Activity Mapping: A Review. Eur J Transl Myol 2015;24:4745. doi: 10.4081/ejtm.2014.4745. eCollection 2014 Nov 28. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 38.Tramonti C, Dalise S, Bertolucci F, et al. Abnormal Lactate Levels Affect Motor Performance in Myotonic Dystrophy Type 1. Eur J Transl Myol 2014;24:4726. doi: 10.4081/ejtm.2014.4726. eCollection 2014 Nov 28. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 39.Reichel M, Martinek J. Simulation of the Electrical Field in Equine Larynx to Optimize Functional Electrical Stimulation in Denervated Musculus Cricoarythenoideus Dorsalis. Eur J Transl Myol 2014. Mar 31;24:3320. doi: 10.4081/ejtm.2014.3320. eCollection 2014 Sep 23. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 40.Roth N, Wiener A, Mizrahi J. Methods for Dynamic Characterization of the Major Muscles Activating the Lower Limb Joints in Cycling Motion. Eur J Transl Myol 2014;24:3317. doi: 10.4081/ejtm.2014.3317. eCollection 2014 Sep 23. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 41.Pond A, Marcante A, Zanato R, et al. History, Mechanisms and Clinical Value of Fibrillation Analyses in Muscle Denervation and Reinnervation by Single Fiber Electromyography and Dynamic Echomyography. Eur J Transl Myol 2014;24:3297. doi: 10.4081/ejtm.2014.3297. eCollection 2014 Mar 31. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 42.Azevedo-Coste C, Fornusek C, Vergeron V, eds. The EJTM Special FES Cycling/Cybathlon. Eur J Transl Myol 2017; 27:(4), in press. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 43.Kern H, Hofer C, Löfler S, et al. Atrophy, ultra-structural disorders, severe atrophy and degeneration of denervated human muscle in SCI and Aging. Implications for their recovery by Functional Electrical Stimulation, updated 2017. Neurol Res 2017;39:660-666. doi: 10.1080/01616412.2017.1314906. Epub 2017 Apr 13. [DOI] [PubMed] [Google Scholar]
  • 44.Kern H, Carraro U, Adami N, et al. Home-based functional electrical stimulation rescues permanently denervated muscles in paraplegic patients with complete lower motor neuron lesion. Neurorehabil Neural Repair 2010;24:709-21. [DOI] [PubMed] [Google Scholar]
  • 45.Carraro U, Boncompagni S, Gobbo V, et al. Persistent Muscle Fiber Regeneration in Long Term Denervation. Past, Present, Future. Eur J Transl Myol 2015 Mar 11;25:4832. doi: 10.4081/ejtm.2015.4832. eCollection 2015 Mar 11. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 46.Kern H, Boncompagni S, Rossini K, et al. Long-term denervation in humans causes degeneration of both contractile and excitation-contraction coupling apparatus that can be reversed by functional electrical stimulation (FES). A role for myofiber regeneration? J Neuropath Exp Neurol 2004;63:919–31. [DOI] [PubMed] [Google Scholar]
  • 47.Boncompagni S, Kern H, Rossini K, et al. Structural differentiation of skeletal muscle fibers in the absence of innervation in humans. Proc Natl Acad Sci U S A. 2007;104:19339–44. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 48.Carraro U, Kern H. Severely Atrophic Human Muscle Fibers With Nuclear Misplacement Survive Many Years of Permanent Denervation. Eur J Transl Myol. 2016. Jun 13;26(2):5894. doi: 10.4081/ejtm.2016.5894. PMID: 27478559. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 49.Hofer C, Mayr W, Stöhr H, et al. A stimulator for functional activation of denervated muscles. Artif Organs 2002;26:276-9. [DOI] [PubMed] [Google Scholar]
  • 50.Mayr W. Surface Electrode. Patent WO2007131248 (A1). [Google Scholar]
  • 51.Kern H, Hofer C, Mayr W, Carraro U. European Project RISE: Partners, protocols, demography. Basic Appl Myol 2009;19:211-6. [Google Scholar]
  • 52.Carraro U, Kern H, Gava P, et al. Recovery from muscle weakness by exercise and FES: lessons from Masters, active or sedentary seniors and SCI patients. Aging Clin Exp Res 2017;29:579-590. doi: 10.1007/s40520-016-0619-1. Epub 2016 Sep 3. Review. [DOI] [PubMed] [Google Scholar]
  • 53.Kern H, Carraro U. Home-based functional electrical stimulation (h-b FES) for long- term denervated human muscle: history, basics, results and perspectives of the Vienna rehabilitation strategy. Eur J Transl Myol. 2014;24:27–40. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 54.Kern H, Hofer C, Mayr W. Protocols for clinical work package of the European project RISE. Basic Appl Myol. 2008;18:39–44. [Google Scholar]
  • 55.Kern H, Carraro U, Adami N, et al. One year of home-based functional electrical stimulation (FES) in complete lower motor neuron paraplegia: recovery of tetanic contractility drives the structural improvements of denervated muscle. Neurol Res. 2010;32:5–12. DOI:1 0.1189/184313209X385644 [DOI] [PubMed] [Google Scholar]
  • 56.Fiorucci R, Piscioneri A. FES for large denervated muscles: comments of patients and practical demonstrations. Eur J Transl Myol. 2013;23:162–164. [Google Scholar]
  • 57.Kern H, Rossini K, Carraro U, et al. Muscle biopsies show that FES of denervated muscles reverses human muscle degeneration from permanent spinal motoneuron lesion. J Rehabil Res Dev 2005;42:43–53. [DOI] [PubMed] [Google Scholar]
  • 58.Edmunds KJ, Gíslason MK, Arnadottir ID, et al. Quantitative computed tomography and image analysis for advanced muscle assessment. Eur J Transl Myol 2016 Jun 22;26:6015. DOI:10.4081/ejtm.2016.6015. eCollection 2016 Jun 13. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 59.Edmunds KJ, Árnadóttir Í, Gíslason MK, et al. Nonlinear Trimodal Regression Analysis of Radiodensitometric Distributions to Quantify Sarcopenic and Sequelae Muscle Degeneration. Comput Math Methods Med 2016;2016:8932950. doi: 10.1155/2016/8932950. Epub 2016 Dec 27. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 60.Carraro U, Edmunds KJ, Gargiulo P. 3D False Color Computed Tomography for Diagnosis and Follow-Up of Permanent Denervated Human Muscles Submitted to Home-Based Functional Electrical Stimulation. Eur J Transl Myol 2015;25:5133. doi: 10.4081/ejtm.2015.5133. eCollection 2015 Mar 11. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 61.Ortolan P, Zanato R, Coran A, et al. Role of Radiologic Imaging in Genetic and Acquired Neuromuscular Disorders. Eur J Transl Myol 2015 Mar 11;25(2):5014. doi: 10.4081/ejtm.2015.5014. eCollection 2015 Mar 11. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 62.Magnússon B, Pétursson Þ, Edmunds K, et al. Improving Planning and Post-Operative Assessment for Total Hip Arthroplasty. Eur J Transl Myol 2015;25:4913. doi: 10.4081/ejtm.2015.4913. eCollection 2015 Mar 11. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 63.Wiedemann L, Chaberova J, Edmunds K, et al. Low-Amplitude Craniofacial EMG Power Spectral Density and 3D Muscle Reconstruction from MRI. Eur J Transl Myol 2015;25:4886. doi: 10.4081/ejtm.2015. 4886. eCollection 2015 Mar 11. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 64.Edmunds KJ, Gargiulo P. Imaging Approaches in Functional Assessment of Implantable Myogenic Biomaterials and Engineered Muscle Tissue. Eur J Transl Myol 2015. ;25:4847. doi: 10.4081/ejtm.2015.4847. eCollection 2015 Mar 11. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 65.Gislason MK, Ingvarsson P, Gargiulo P, et al. Finite Element Modelling of the Femur Bone of a Subject Suffering from Motor Neuron Lesion Subjected to Electrical Stimulation. Eur J Transl Myol 2015;24:2187. doi: 10.4081/ejtm.2014.2187. eCollection 2014 Sep 23. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 66.Gargiulo P, Helgason T, Ramon C, et al. CT and MRI Assessment and Characterization Using Segmentation and 3D Modeling Techniques: Applications to Muscle, Bone and Brain. Eur J Transl Myol. 2014;24:3298. doi: 10.4081/ejtm.2014.3298. eCollection 2014 Mar 31. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 67.Gargiulo P, Pétursson T, Magnússon B, et al. Assessment of total hip arthroplasty by means of computed tomography 3D models and fracture risk evaluation. Artif Organs. 2013 Jun;37(6):567-73. doi: 10.1111/aor.12033. Epub 2013 Apr 2. [DOI] [PubMed] [Google Scholar]
  • 68.Gargiulo P, Reynisson PJ, Helgason B, et al. Muscle, tendons, and bone: structural changes during denervation and FES treatment. Neurol Res. 2011 Sep;33(7):750-8. doi: 10.1179/1743132811Y .0000000007. [DOI] [PubMed] [Google Scholar]
  • 69.Rossini K, Zanin ME, Carraro U. To stage and quantify regenerative myogenesis in human long - term permanent denervated muscle. Basic Appl Myol. 2002;12:277–287. [Google Scholar]
  • 70.Carraro U, Rossini K, Mayr W, et al. Muscle fiber regeneration in human permanent lower motoneuron denervation: relevance to safety and effectiveness of FES-training, which induces muscle recovery in SCI subjects. Artif Organs. 2005;29:187–191. [DOI] [PubMed] [Google Scholar]
  • 71.Carraro U, Kern H. Severely atrophic human muscle fibers with nuclear misplacement survive many years of permanent denervation. Eur J Transl Myol. 2016;26:76–80. DOI:10.4081/ejtm.2016.5894. eCollection 2016. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 72.72 Mussini I, Favaro G, Carraro U. Maturation, dystrophic changes and the continuous production of fibers in skeletal muscle regenerating in the absence of nerve. J Neurophatol Exp Neurol. 1987;46:315–31. [DOI] [PubMed] [Google Scholar]
  • 73.73 Carraro U, Catani C, Degani A, et al. Myosin expression in denervated fast and slow twitch muscles: fibre modulation and substitution. In: Pette D, editor. The dynamic state of muscle fibres. Berlin: de Gruyter Walter ; 1990. p. 247–62. [Google Scholar]
  • 74.Carraro U, Rossini K, Zanin ME, et al. Induced myogenesis in long- term permanent denervation: perspective role in Functional Electrical Stimulation of denervated legs in humans. Basic Appl Myol 2002;12:53–64. [Google Scholar]
  • 75.75 Borisov AB, Dedkov EI, Carlson BM. Interrelations of myogenic response, progressive atrophy of muscle fibres, and cell death in denervated skeletal muscle. Anat Rec 2001;264:203–18. [DOI] [PubMed] [Google Scholar]
  • 76.Lømo T, Westgaard RH, Hennig R, Gundersen K. The Response of Denervated Muscle to Long-Term Electrical Stimulation. Eur J Transl Myol 2014;24:3300. doi: 10.4081/ejtm.2014.3300. eCollection 2014 Mar 31. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 77.Lømo T. The Response of Denervated Muscle to Long-Term Stimulation (1985, Revisited here in 2014). Eur J Transl Myol 2014;24:13–9. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 78.Adami N, Kern H, Mayr W, et al. Permanent denervation of rat tibialis anterior after bilateral sciatectomy: determination of chronaxie by surface electrode stimulation during progression of atrophy up to one year. Basic Appl Myol 2007;17:237–43. [Google Scholar]
  • 79.Carlson BM. The Biology of long-term denervated skeletal muscle. Eur J Transl Myol 2014;24:3293. DOI:10.4081/ejtm.2014.3293 [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 80.Scicchitano BM, Sica G, Musarò A. Stem Cells and Tissue Niche: Two Faces of the Same Coin of Muscle Regeneration. Eur J Transl Myol 2016;26:6125. doi: 10.4081/ejtm.2016.6125. eCollection 2016 Sep 15. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 81.Riuzzi F, Beccafico S, Sorci G, Donato R. S100B protein in skeletal muscle regeneration: regulation of myoblast and macrophage functions. Eur J Transl Myol 2016;26:5830. doi: 10.4081/ejtm.2016.5830. eCollection 2016 Feb 23. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 82.Downloaded from: https://stemcells.nih.gov/info/basics/4.htm [Google Scholar]
  • 83.Downloaded from: NIH's Stem Cell Reports at: https://stemcells.nih.gov/info.htm. [Google Scholar]
  • 84.Downloaded from: Editors NIH. What are the potential uses of human stem cells and the obstacles that must be overcome before these potential uses will be realized? https://stemcells.nih.gov/info/basics/7.htm [Google Scholar]
  • 85.Fawcett DW. Bloom and Fawcett. Trattato di Istologia. Dodicesima edizione. McGraw-Hill; 1996. [Google Scholar]
  • 86.Lauria G, Lombardi R, Camozzi F, Devigili G. Skin biopsy for the diagnosis of peripheral neuropathy. Histopathology 2009;54:273-85. [DOI] [PubMed] [Google Scholar]
  • 87.Hunckler J, de Mel A. A current affair: electrotherapy in wound healing. J Multidiscip Healthc 2017:10:179-94. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 88.Rosenbaum T, Gordon-Shaag A, et al. Ca2+/calmodulin modulates TRPV1 activation by capsaicin. The J Gen Physiol 2004;123:53-62. PubMed PMID: 14699077. Pubmed Central PMCID: PMC2217413. Epub 2003/12/31. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 89.Geletka BJ, O'Hearn MA, Courtney CA. Quantitative sensory testing changes in the successful management of chronic low back pain. The Journal of manual & manipulative therapy 2012;20:16-22. PubMed PMID: 23372390. Pubmed Central PMCID: PMC3267442. Epub 2013/02/02. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 90.Robbins WR, Staats PS, Levine J, et al. Treatment of intractable pain with topical large-dose capsaicin: preliminary report. Anesthesia and analgesia 1998;86:579-83. PubMed PMID: 9495419. Epub 1998/03/12. eng. [DOI] [PubMed] [Google Scholar]
  • 91.Derry S, Moore RA. Topical capsaicin (low concentration) for chronic neuropathic pain in adults. The Cochrane database of systematic reviews 2012;9:CD010111. PubMed PMID: 22972149. Epub 2012/09/14. eng. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 92.Kaplanski G, Marin V, Montero-Julian F, et al. IL-6: a regulator of the transition from neutrophil to monocyte recruitment during inflammation. Trends Immunol. 2003, 24: 25-29. 10.1016/S1471-4906(02)00013-3. [DOI] [PubMed] [Google Scholar]
  • 93.93 Pette D, Vrbová G. The Contribution of Neuromuscular Stimulation in Elucidating Muscle Plasticity Revisited. Eur J Transl Myol 2017;27:6368. doi: 10.4081/ejtm.2017.6368. eCollection 2017 Feb 24. Review [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 94.Kern H, Barberi L, Löfler S, et al. Electrical stimulation (ES) counteracts muscle decline in seniors. Front Aging Neurosci 2014;6:189. doi:10.3389/fnagi.2014.00189.eCollection. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 95.Krenn M, Haller M, Bijak M, et al. Safe neuromuscular electrical stimulator designed for the elderly. Artif Organs 2011:35:253–6. [DOI] [PubMed] [Google Scholar]
  • 96.Mammucari C, Gherardi G, Zamparo I, et al. The mitochondrial calcium uniporter controls skeletal muscle trophism in vivo. Cell Rep 2015;10:1269–79. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 97.Zampieri S, Mammucari C, Romanello V, et al. Physical exercise in aging human skeletal muscle increases mitochondrial calcium uniporter expression levels and affects mitochondria dynamics. Physiol Rep 2016;4(24). pii: e13005. doi: 10.14814/phy2.13005. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 98.Boncompagni S, d'Amelio L, Fulle S, et al. Progressive disorganization of the excitation-contraction coupling apparatus in aging human skeletal muscle as revealed by electron microscopy: a possible role in the decline of muscle performance. J Gerontol A Biol Sci Med Sci 2006;61:995-1008. [DOI] [PubMed] [Google Scholar]
  • 99.Salanova M, Bortoloso E, Schiffl G, et al. Expression and regulation of Homer in human skeletal muscle during neuromuscular junction adaptation to disuse and exercise. FASEB J 2011;25:4312-25. [DOI] [PubMed] [Google Scholar]
  • 100.Crabtree GR, Schreiber SL. SnapShot: Ca2+-calcineurin-NFAT signaling. Cell 2009;138:210-210. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 101.Ehlers ML, Celona B, Black BL. NFATc1 controls skeletal muscle fiber type and is a negative regulator of MyoD activity. Cell Rep 2014;8:1639-48. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 102.Hockerman GH, Dethrow NM, Hameed S, et al. The Ubr2 Gene is Expressed in Skeletal Muscle Atrophying as a Result of Hind Limb Suspension, but not Merg1a Expression Alone. Eur J Transl Myol 2014;24:3319. doi: 10.4081/ejtm.2014.3319. eCollection 2014 Sep 23. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 103.Mayr W. Neuromuscular Electrical Stimulation for Mobility Support of Elderly. Eur J Transl Myol 2015;27:263-8. doi: 10.4081/ejtm.2015.5605. eCollection 2015 Aug 24. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 104.104 Sarabon N, Löfler S, Hosszu G, Hofer C. Mobility Test Protocols for the Elderly: A Methodological Note. Eur J Transl Myol 2015;25:253-6. doi: 10.4081/ejtm.2015.5385. eCollection 2015 Aug 24. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 105.105 Cvecka J, Tirpakova V, Sedliak M, Kern H, et al. Physical Activity in Elderly. Eur J Transl Myol 2015;25:249-52. doi: 10.4081/ejtm.2015.5280. eCollection 2015 Aug 24. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 106.106 Willand MP. Electrical Stimulation Enhances Reinnervation After Nerve Injury. Eur J Transl Myol 2015;25:243-8. doi: 10.4081/ejtm.2015.5243. eCollection 2015 Aug 24. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 107.107 Zampieri S, Mosole S, Löfler S, et al. Physical Exercise in Aging: Nine Weeks of Leg Press or Electrical Stimulation Training in 70 Years Old Sedentary Elderly People. Eur J Transl Myol 2015;25:237-42. doi: 10.4081/ejtm.2015.5374. eCollection 2015 Aug 24. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 108.108 Barber L, Scicchitano BM, Musaro A. Molecular and Cellular Mechanisms of Muscle Aging and Sarcopenia and Effects of Electrical Stimulation in Seniors. Eur J Transl Myol 2015;25:231-6. doi: 10.4081/ejtm.2015.5227. eCollection 2015 Aug 24. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 109.109 Carotenuto F, Coletti D, Di Nardo P, Teodori L. α-Linolenic Acid Reduces TNF-Induced Apoptosis in C2C12 Myoblasts by Regulating Expression of Apoptotic Proteins. Eur J Transl Myol 2016;26:6033. doi: 10.4081/ejtm.2016.6033. eCollection 2016 Sep 15. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 110.110 Costa A, Rossi E, Scicchitano BM, et al. Neurohypophyseal Hormones: Novel Actors of Striated Muscle Development and Homeostasis. Eur J Transl Myol 2014;24:3790. doi: 10.4081/ejtm.2014.3790. eCollection 2014 Sep 23. Review. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 111.Power GA, Dalton BH, Gilmore KJ, et al. Maintaining Motor Units into Old Age: Running the Final Common Pathway. Eur J Transl Myol. 2017;27:6597. doi: 10.4081/ejtm.2017.6597. eCollection 2017 Feb 24. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 112.112 Mosole S, Carraro U, Kern H, et al. Use it or Lose It: Tonic Activity of Slow Motoneurons Promotes Their Survival and Preferentially Increases Slow Fiber-Type Groupings in Muscles of Old Lifelong Recreational Sportsmen. Eur J Transl Myol 2016;26:5972. doi: 10.4081/ejtm.2016.5972. eCollection 2016 Sep 15. [DOI] [PMC free article] [PubMed] [Google Scholar]
  • 113.Pigna E, Greco E, Morozzi G, et al. Denervation does not Induce Muscle Atrophy Through Oxidative Stress. Eur J Transl Myol. 2017;27:6406. doi: 10.4081/ejtm.2017.6406. eCollection 2017 Feb 24 [DOI] [PMC free article] [PubMed] [Google Scholar]

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