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Orphanet Journal of Rare Diseases logoLink to Orphanet Journal of Rare Diseases
. 2022 Mar 3;17:97. doi: 10.1186/s13023-022-02244-6

Identification of three novel homozygous variants in COL9A3 causing autosomal recessive Stickler syndrome

Aboulfazl Rad 1, Maryam Najafi 2,3, Fatemeh Suri 4, Soheila Abedini 5,6, Stephen Loum 1, Ehsan Ghayoor Karimiani 6, Narsis Daftarian 7, David Murphy 5, Mohammad Doosti 3, Afrooz Moghaddasi 4, Hamid Ahmadieh 4, Hamideh Sabbaghi 8, Mohsen Rajati 9, Narges Hashemi 10, Barbara Vona 1,11,12, Miriam Schmidts 2,3,13,
PMCID: PMC8892745  PMID: 35241111

Abstract

Background

Stickler syndrome (STL) is a rare, clinically and molecularly heterogeneous connective tissue disorder. Pathogenic variants occurring in a variety of genes cause STL, mainly inherited in an autosomal dominant fashion. Autosomal recessive STL is ultra-rare with only four families with biallelic COL9A3 variants reported to date.

Results

Here, we report three unrelated families clinically diagnosed with STL carrying different novel biallelic loss of function variants in COL9A3. Further, we have collected COL9A3 genotype–phenotype associations from the literature.

Conclusion

Our report substantially expands the molecular genetics and clinical basis of autosomal recessive STL and provides an overview about allelic COL9A3 disorders.

Supplementary Information

The online version contains supplementary material available at 10.1186/s13023-022-02244-6.

Keywords: Autosomal recessive Stickler syndrome, COL9A3, Collagen, Hearing loss, Retinal detachment

Background

Stickler syndrome (STL) is a rare, clinically and genetically heterogeneous connective tissue disorder divided into six clinical subtypes with overlapping features, including ocular pathologies (myopia, retinal detachment, vitreoretinal degeneration, cataract), hearing impairment (sensorineural, mixed, and/or conductive), craniofacial abnormalities (midface hypoplasia, anteverted nares, depressed nasal bridge and either Pierre Robin sequence or cleft palate and micrognathia) and joint problems (mild spondyloepiphyseal dysplasia, and precocious osteoarthritis) [1]. These features exhibit substantial variable expressivity according to clinical subtype [1]. STL is molecularly diagnosed by the presence of pathogenic variants in six collagen-type genes including COL2A1, COL11A1, COL11A2, COL9A1, COL9A2, COL9A3, and two non-collagen genes consisting of LRP2 and LOXL3 [13], following a predominantly autosomal dominant inheritance pattern.

The heteropolymer collagen XI/IX/II are critical in the extracellular matrix of joints, bones, ligaments and connective tissues throughout the body [4]. COL2A1 encodes collagen type II alpha 1 chain. Heterozygous variants that cause functional haploinsufficiency are responsible for autosomal dominant STL type I (OMIM #108300), representing the most common subtype, accounting for roughly 80–90% of STL [5, 6]. Pathogenic variants in COL11A1 cause the second most common STL subtype, type II (OMIM #604841) (10–20%). Variants in this gene likewise typically follow a dominant inheritance pattern [7], although five families have been described with STL and biallelic COL11A1 mutations [810]. COL11A2 pathogenic variants are very rare and cause autosomal dominant non-ocular Stickler syndrome (type III, OMIM#184840), also known as otospondylomegaepiphyseal dysplasia (OSMEDA, OMIM# 120290), as well as Weissenbacher-Zweymuller syndrome (WZS) (OMIM #184840) [11]. Biallelic variants in LOXL3, a member of the lysyl oxidase family of genes, have recently been causally associated with STL in two unrelated families [2, 12]. A biallelic missense variant in LRP2 has likewise been suggested to cause STL [3].

Collagen IX proteins are encoded by COL9A1, COL9A2 and COL9A3 that together form fibril heterotrimer associated collagens and have been recently linked to autosomal recessive STL [13]. Very recently, heterozygous COL9A3 variants have been identified as causing peripheral vitreoretinal degeneration and retinal detachment [14]. COL9A1 and COL9A2 are causally associated with autosomal recessive STL type IV (OMIM #614134) and V (OMIM #61484), respectively. The main clinical characteristics of individuals affected with biallelic COL9A1 variants include moderate-to-severe sensorineural hearing loss, moderate-to-high myopia with vitreoretinopathy, and epiphyseal dysplasia, whereas COL9A2 variants are associated with high myopia, vitreoretinal degeneration, retinal detachment, hearing loss, and short stature. Only very recently, biallelic mutations in COL9A3 have been described to cause autosomal recessive STL in four unrelated families with seven patients. The main phenotypes that are common in all these patients consisted of high myopia, moderate to severe sensorineural hearing loss, and spondylo/epiphyseal dysplasia. Here, we report three additional unrelated consanguineous STL families with five affected individuals in total who each present three novel biallelic COL9A3 variants.

Results

Clinical assessments

Three unrelated consanguineous families of Iranian descent were referred for genetic testing due to hearing and vision impairment (Fig. 1), as well as skeletal dysplasia that resulted in a clinical diagnosis of STL (Fig. 2).

Fig. 1.

Fig. 1

A Pedigrees and electropherogram of affected individuals with biallelic COL9A3 variants. B Audiograms of right ears of all affected individuals from three families. C, D Optical coherence tomography (OCT) imaging in proband II1 from family 1 showing retinal detachment

Fig. 2.

Fig. 2

Pictures of four affected individuals and standard radiographs of the spine, pelvis and limbs of two patients. AD Pictures of two affected individuals from family 2 who both have herniated cervical discs. E, F Pictures of affected individual II1 from family 3 showing short stature, pes planus, bowed tibia, genu valga and rotated distal femura distal femur. G, H Clinical appearance of proband II1 from family 1 showing pes planus, mild midface hypoplasia, upturned nose and low set ears. I, J Hand and foot radiographs showing short metacarpalia and a broad big toe for individual II1 from family 3 at the age of 10 years. K, L Radiograph images of the right hand and wrist joint of individual II1 from family 1 at the age of 28 years, showing short metacarpalia with widened epiphyses and an irregular radius epiphysis. M, N Radiographs of the spine of II1 from family 1, showing mild platyspondyly of the thoracic spine as well as signs of ankylosing spondylitis. O Knee radiograph of proband II1 from family 3 showing genua valga and irregular femur epiphyses. P Knee radiograph of proband II1 from family 1 demonstrating genua valga and widened femur epiphyses. Q Pelvis radiograph individual II1 of from family 3 showing a flat acetabular roof with irregularities and flattened capiti femori, as well as broadened and shortened necks. R Radiograph of the pelvis of individual II1 from family 1 showing a relatively narrow intraarticular space but well developed capiti femori and no flattening of the acetabular roof

The female proband (II1) from Family 1 is the oldest and only affected individual out of three children from first cousin parents. She had a normal delivery and birth, with a birth weight of 3.2 kg (− 0.43 SD). She was 28 years old at last examination with a weight of 64 kg (+ 0.41 SD), height of 157 cm (− 0.8 SD) and occipitofrontal circumference (OFC) of 55 cm (+ 0.62 SD). She suffers from high myopia in both eyes, in addition to vitreoretinal degeneration with empty vitreous, multiple lattice degenerations and retinal pigmentary changes. There was unilateral absence of the frontal sinus in her skull X-ray. She has severe and progressive sensorineural hearing loss. X-ray and detailed examination of her joints and bones, including mobility testing and examination for signs of osteoarthritis were normal, however she complained of pain in her knee joints. Typical STL craniofacial features such as midface hypoplasia, cleft palate, micrognathia, depressed nasal bridge and anteverted nares are absent.

Family 2 presented with two affected individuals out of four children who were born from a first cousin marriage. The proband (II1) and his affected sibling (II2) both had a normal delivery around term, measurements at birth could not be obtained. Weight, height and OFC at last clinical assessment (at 65 and 57 years-old) were 68 kg (− 0.16 SD) and 66 kg (− 0.39 SD), 166 cm (− 1.4 SD) and 163 cm (− 1.8 SD), 56 cm (+ 0.62 SD) and 57 cm (+ 1.32 SD), respectively. Both had a history of multiple vitreoretinal surgeries due to recurrent rhegmatogenous retinal detachments resulting from advanced vitreoretinal degeneration. Despite vitreoretinal surgeries, the older patient is considered blind without light perception (NLP) in either eye while his sibling has counting finger vision for one eye while NLP was noted for the other eye. Both suffer from severe and progressive sensorineural hearing loss. Likewise, both show a herniated cervical disc and muscular atrophy was noted in the older sibling. No radiologic documentation was available for review.

Family 3 presented with two affected and two healthy children from first cousin parents. Both affected individuals had normal delivery with a birth weight of 3.4 kg (− 0.26 SD) and 3.75 kg (+ 0.71 SD), length of 49 cm (− 0.6 SD) and 49.5 cm (0.1 SD), and OFC of 35 cm (− 0.40 SD) and 36 cm (+ 0.62 SD). The most current weight, height and OFC measurements for the proband (II1) at age 11.8 years and his sister (II4) at age 3.1 years are 32 kg (-1.43 SD), 137 cm (0.9 SD), and 53 cm (− 0.53 SD) and 12 kg (− 0.05 SD), 84 cm (− 0.6 SD), and 48 cm (+ 0.39 SD), respectively. Both affected individuals have myopia and congenital moderate to severe progressive sensorineural hearing impairment. The affected male complains of knee joint pain, especially when he runs. X-ray and detailed examination demonstrated spondyloepiphyseal dysplasia in both children. Both individuals II1 and II4 have pes planus, depressed nasal bridge and anteverted nares, with midface hypoplasia and downslanting palpebral fissures more pronounced in II4. Detailed clinical features of all affected individuals are described in Table 1 and Additional file 1: Table S1. None of the individuals showed signs of intellectual disability.

Table 1.

Summary of genetic and clinical findings in probands with biallelic COL9A3 variants

p.(Pro36Argfs*49) Family 1 p.(Arg402*) Family 2, Patient1 p.(Arg402*) Family 2, Patient 2 p.(Leu119Serfs*10) Family 3, Patient 1 p.(Leu119Serfs*10) Family3, Patient 2 p.(Gln393Cysfs*25) Faletra et al. [15] Patient 1
Ethnicity Iranian Iranian Iranian Iranian Iranian Moroccan
Consanguinity First cousin First cousin First cousin First cousin First cousin First cousin
Sex Female Male Male Male Female Female
Age in years 28 65 57 11 years, 8 months 3 years,1 month 4
Birth Uncomplicated (normal delivery) Uncomplicated (normal delivery) Uncomplicated (normal delivery) Uncomplicated Uncomplicated NA
Measurements
OFC at last examination 55 cm (+ 0.62 SD) 56 cm (+ 0.62 SD) 57 cm (+ 1.32 SD) 53 cm (− 0.53 SD) 48 cm (+ 0.39 SD) NA
Weight at last evaluation 64 kg (+ 0.41 SD) 68 kg (− 0.16 SD) 66 kg (− 0.39 SD) 32 kg (− 1.43 SD) 12 kg (− 0.05 SD) 16 kg
Height at last examination 157 cm (− 0.8 SD) 166 cm (− 1.4 SD) 163 cm (− 1.8 SD) 137 cm (0.9 SD) 84 cm (− 0.6 SD) 107 cm
Myopia Moderate-to-high High High High High Moderate-to-high
Vitreoretinal degeneration No Yes Yes No No No
Cataract No Yes Yes No No No
Retinal detachment No Yes Yes No No No
Auditory system
Hearing loss Yes Yes Yes Yes Yes Yes
Age at onset NA NA NA Early onset Early onset Early onset
Type Sensorineural Sensorineural Sensorineural Sensorineural Sensorineural Sensorineural
Degree of hearing loss Severe Profound Profound Moderate-to-severe Moderate-to-severe Moderate-to-severe
Progressive/stable Progressive Progressive Progressive Progressive Progressive Progressive
Joints
Short stature No No No No No No
Spondyloepiphyseal dysplasia No No No Yes Yes No
Epiphyseal dysplasia No No No Yes Yes Yes
Craniofacial structures
Midface hypoplasia No No No No Yes Yes
Cleft palate No No No No No No
p.(Gln393Cysfs*25) Faletra et al. [15] Patient 2 p.(Gln393Cysfs*25) Faletra et al. [15] Patient 3 p.(Pro218Alafs*49) Hanson-Kahn et al. [16] p.(Arg471Ter) Nixon et al. [13] Patient 1 p.(Arg471Ter) Nixon et al. [13] Patient 2 p.(Arg90Ter) and p.(Arg577Ter) Markova et al. [19]
Ethnicity Moroccan Moroccan Indian NA NA Russian
Consanguinity First cousin First cousin Third cousin NA NA No
Sex Male Male NA NA NA Male
Age in years 11 16 12 18 20
Birth NA NA Uncomplicated (Caesarean section) NA NA At term
Measurements
OFC at last examination NA NA NA NA NA NA
Weight at last evaluation 38 kg 60 kg NA NA NA 13 kg (50th %ile)
Height at last examination 144 cm 170 cm NA NA NA 88 cm (25–50th %ile)
Myopia Moderate-to-high Moderate-to-high High High High High
Vitreoretinal degeneration No No No No No Yes
Cataract No No No No No No
Retinal detachment No No No No No No
Auditory system
Hearing loss Yes Yes Yes Yes Yes Yes
Age at onset NA NA Early onset NA NA Yes
Type Sensorineural Sensorineural Sensorineural Sensorineural Sensorineural Senorineural
Degree of hearing loss Moderate-to-severe Moderate-to-severe Moderate-to-severe Severe Severe Severe
Progressive/stable Progressive Progressive Stable Progressive Progressive NA
Joints
Short stature No No No No No No
Spondyloepiphyseal dysplasia No No No No No Yes
Epiphyseal dysplasia Yes Yes Yes NA NA Yes
Craniofacial structures
Midface hypoplasia Yes Yes Yes No No Yes
Cleft palate No No No No No No

NA not ascertained, OFC occipitofrontal circumference, SD standard deviation

Genetic analysis

The DNA of probands from the three unrelated families (family 1 Proband II1, family 2 proband II1, family 3 proband II1) was subjected to Exome Sequencing (ES), revealing three different novel, homozygous loss of function (LOF) variants in COL9A3, NM_001853.3. The proband in Family 1 was found to have a COL9A3 deletion (c.107_116del, p.(Pro36Argfs*49), rs1470627424), causing a frameshift in exon 2. The allele frequency in gnomAD is 0.00001390 with two carriers, while other public genomic databases such as Iranome and GME, and 1000 genomes have not reported this variant. The proband in family 2 disclosed a COL9A3 nonsense variant (c.1204C > T, p.(Arg402*), rs989413835) in exon 23, while the proband in Family 3 showed a one base pair deletion in COL9A3 [c.355delC, p.(Leu119Serfs*9)] in exon 7. Both variants have not been reported in public databases.

Discussion

Here, we report three families with five affected individuals clinically diagnosed with autosomal recessive STL due to biallelic LOF variants in COL9A3. Our report re-affirms previous studies that have described four families with biallelic LOF causing autosomal recessive STL, increasing the total number of families reported to date to seven [13, 15, 16]. These COL9A3 variants as well a other disease causing COL9A3 variants submitted to HGMD are visualized in Fig. 3 for localization on cDNA as well as on protein level.

Fig. 3.

Fig. 3

Overview of known and novel variants in COL9A3 at the cDNA and protein levels. All variants have been reported by HGMD Professional 2020.1.and classified as pathogenic in ClinVar or are reported but have not yet been classified in ClinVar. The black words indicate heterozygous variants, the blue words show homozygous variants and the green words show the heterozygous compound variants. A Variants on cDNA level; B variants on protein level

COL9A3, along with two other heterodimers (COL9A1 and COL9A2), belongs to the collagen IX complex, forming a fibril-associated collagen with interrupted triple (FACIT) helices and connecting with collagen II and XI fibrils. A Col9a1 knockout mouse study previously demonstrated that absence of this protein in mice results in the loss of the entire collagen IX heterotrimer complex [17]. Recent reports on the clinical phenotype of STL and MED syndromes that are caused by variants affecting different members of collagen IX have supported the hypothesis that each of the three proteins is essential for collagen IX function [13, 18].

While a variety of disorders have been described to result from heterozygous pathogenic variants in COL9A3, only four unrelated STL families and one family with nonsyndromic hearing loss have been reported to date carrying biallelic variants (Table 2). Allelic disorders resulting from COL9A3 variants include nonsyndromic hearing loss, MED, pseudoachondroplasia, cerebral palsy, and lumbar disc disease and severe peripheral vitreoretinal degeneration and retinal detachment (Table 2).

Table 2.

Pathogenic COL9A3 variants reported in HGMD and associated clinical phenotypes

c.DNA position Protein position Exon/intron Description Zygosity dbSNP ClinVar Reported phenotype References
99 bp duplication (CNV) Het NA NA Sensorineural hearing loss Ji (2014) BMC Ear Nose Throat Disord 14,9
c.97C > T p.(Pro33Ser) 2 Missense Het rs745914662 NA Cerebral palsy Pingel (2019) Am J Med Genet B Neuropsychiatr Genet 180,12
c.104G > A p.(Gly35Asp) 2 Missense Het rs1390736361 NA Multiple epiphyseal dysplasia Jeong (2014) BMC Musculoskelet Disord 15,371
c.148-1G > A p.? 2 Splicing Het rs606231367 NA Multiple epiphyseal dysplasia Lohiniva (2000) Am J Med Genet 90,216
c.148-2A > G p.? 2 Splicing Het NA NA Multiple epiphyseal dysplasia Jackson (2012) Hum Mutat 33,144
c.148-2A > T p.? 2 Splicing Het NA P Multiple epiphyseal dysplasia Paassilta (1999) Am J Hum Genet 64,1036
c.183 + 5G > A p.? 3 Splicing Het NA P Multiple epiphyseal dysplasia Nakashima (2005) Am J Med Genet 132A,181
c.268C > T p.(Arg90Ter) 5 Nonsense Comp het rs763259234 NA Stickler syndrome Markova (2021) Mol Genet Genomic Med
c.369 + 2T > C p.? 7 Splicing Het rs1057518693 P Multiple epiphyseal dysplasia Posey (2017) N Engl J Med 376,21
c.369 + 8C > G p.? 7 Splicing Het NA NA Multiple epiphyseal dysplasia Lord (2019) Genome Res 29,159
c.388G > A p.(Gly130Ser) 8 Missense Het rs139401633 VUS Severe peripheral vitreoretinal degeneration and retinal detachment M. Nash (2021) European Journal of Human Genetics
c.543_551del p.(Pro185_Gly187del) 11 In frame Hom rs765392378 NA Nonsyndromic hearing loss Asamura (2005) Auris Nasus Larynx 32,113
c.650dup C p.(Gly217Trpfster50) 13 Frameshift Hom NA NA Stickler syndrome Hanson-Kahn (2018) Am J Med Genet A 176,2887
c.971A > T p.(Asn324Ile) 19 Missense Het NA NA Pseudoachondroplasia Jung (2010) Int J Mol Med 26,885
c.1107 + 1G > C p.? 21 Splicing Het Severe peripheral vitreoretinal degeneration and retinal detachment M. Nash (2021) European Journal of Human Genetics
c.1176_1198del p.(Gln393Cyster*25) 23 Frameshift Hom rs606231470 VUS Stickler syndrome Faletra (2014) Am J Med Genet A 164,42
c.1277T > C p.(Val426Ala) 24 Missense Het NA NA Pseudoachondroplasia Jung (2010) Int J Mol Med 26,885
c.1361G > A p.(Gly454Glu) 26 Missense Het NA NA Nonsyndromic hearing loss Miyagawa (2013) PLoS One 8,e71381
c.1411C > T p.(Arg471ter) 28 Nonsense Hom rs747896279 P Stickler syndrome Nixon (2019) Am J Med Genet A 179,1498
c.1649C > T p.(Pro550Leu) 30 Missense Het rs535230112 NA Nonsyndromic hearing loss Miyagawa (2013) PLoS One 8, e71381
c.1729C > T (p.Arg577Ter) 30 Nonsense Comp het rs1201247953 NA Stickler syndrome Markova (2021) Mol Genet Genomic Med
c.1851C > A p.(Asp617Glu) 31 Missense Het rs199577452 NA Nonsyndromic hearing loss Asamura N Auris Nasus Larynx 32,113

All variants are reported using the NM_001853.3 transcript

Comp het compound heterozygous, Het heterozygous, Hom homozygous, P pathogenic, VUS variant of uncertain significance, NA not ascertained

Consistent clinical features among STL patients with biallelic COL9A3 LOF alleles comprise moderate-to-profound progressive sensorineural hearing loss and moderate high myopia with vitreoretinal degeneration. Retinal detachment and cataract occur occasionally. In contrast, skeletal involvement seems to be more variable. For instance, Nixon et al. [13] reported a family with two affected siblings where the oldest affected sibling had severe arthropathy in the shoulders and hip, requiring a wheelchair. The X-ray of this patient showed spinal scoliosis and narrowing of the articular space in both knees, while the younger affected sibling did not show any of these signs. In line with this report, we also observed that the affected individuals in family 2, at the ages of 65 and 57 years-old, suffer only from myopia, hearing loss and each have a herniated cervical disc while the two much younger affected individuals in family 3, at ages 3 and 11 years-old, have more prominent skeletal findings that include radiological signs of spondyloepiphyseal dysplasia as well as craniofacial abnormalities including depressed nasal bridge and anteverted nares (Table 1). Moreover, Nixon et al. [13] observed that carrier parents can manifest mild STL phenotypes, while our report and others [15, 16, 19] have not observed mild phenotypes in heterozygous individuals. Besides Nixon’s report, Markova et al. [19] introduced a more severe case with compound heterozygous variants with vitreoretinal degeneration, early onset osteoarthritis, midface hypoplasia, hip dysplasia, speech developmental delay, spina bifida, kyphosis, and eye pigment rearrangement.

Conclusion

In summary, our report consolidates that homozygous loss of function variants in COL9A3 cause STL (type VI). We find high myopia and moderate-severe hearing loss to be consistent features amongst all cases while skeletal findings seem more variable.

Material and methods

Subjects

Three unrelated Iranian families with syndromic phenotypes including hearing loss, vision impairment and skeletal dysplasia were referred for clinical genetic diagnostics. Blood samples were collected after obtaining informed consent from patients or their parents. Molecular genetic diagnostic testing was performed in Nijmegen via the Radboud innovative diagnostics programme and at the University of Tuebingen (197/2019BO01). Informed consent from the parents or legal guardians of the patients/participants was obtained for the publication of their data.

Exome and Sanger sequencing

After extraction of DNAs from whole blood by standard protocol, proband DNA samples were subjected to exome capture using the Agilent SureSelect Human All Exon V6 Kit and exome sequencing (ES) was performed on an Illumina HiSeq 2500 sequencer for an average 50 × sequencing depth, resulting in sequences of greater than 100 bases from each end of the fragments [Cambridge (Novogene UK)]. Exome data were processed for analysis using a GATK-based pipeline [20] that uses Burrows-Wheeler alignment [21] to the GRCh37/UCSC hg19 (Families 1 and 2) and GRCh38/UCSC hg38 (Family 3). VarScan version 2.2.5, MuTec and GATK Somatic Indel Detector were used to detect SNV and InDels, respectively. The protocol to interpret potential pathogenic variants was previously described [22]. For population-specific filtering, gnomAD [23], Iranome [24] and Greater Middle East (GME) Variome Project [25] databases were used.

Segregation analysis using Sanger sequencing was performed in available family members to confirm variant segregation after PCR amplification. Primers are available upon request.

Web resources

ClinVar, https://www.ncbi.nlm.nih.gov/clinvar/.

Exome Aggregation Consortium (ExAC), http://exac.broadinstitute.org.

Genome Aggregation Database (gnomAD), http://gnomad.broadinstitute.org/.

Supplementary Information

13023_2022_2244_MOESM1_ESM.docx (21KB, docx)

Additional file 1. Table S1: Clinical features of probands affected by COL9A3 variants. 

Acknowledgements

The authors thank the families for their participation in this study.

Abbreviations

DNA

Deoxyribonucleic acid

ES

Exome sequencing

FACIT

Fibril-associated collagen with interrupted triple helicies

GATK

Genome Analysis Toolkit

GME

Greater Middle East

LOF

Loss of function

MED

Multiple Epiphyseal Dysplasia

OFC

Occipitofrontal circumference

PCR

Polymerase Chain Reaction

SD

Standard deviation

SNV

Single Nucleotide Variant

STL

Stickler syndrome

Authors' contributions

FS, RM, EGK, ND, MD, AM, HA, HS, MR and NH recruited the probands and/or were involved in their clinical care. AR, MN, SL and DM conducted genetic data analysis. AR, MN, BV and MS conceived the study. AR, MN, BV and MS drafted the manuscript. BV and MS supervised the study. All authors read and approved the final version of the manuscript.

Funding

Open Access funding enabled and organized by Projekt DEAL. This research was supported by Intramural Funding (fortüne) at the University of Tübingen (2545-1-0 to B.V.) and the Ministry of Science, Research and Art Baden-Württemberg (to B.V.). MS acknowledges funding form the European Research Council (ERC): ERC starting grant TREATCilia (Grant Agreement No. 716344) and funding from the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation)—Project-ID 431984000—SFB 1453 (CRC Nephgen).

Availability of data and materials

Data can be made available on personal request. Variants reported in this study have been deposited in the Leiden Open Variation Database (LOVD) and are available through the following variant accession numbers: 0000364418, 0000364419 and 0000364420.

Declarations

Ethics approval and consent to participate

Molecular genetic diagnostic testing was performed in Nijmegen via the Radboud innovative diagnostics programme and at the University of Tuebingen (197/2019BO01).

Consent for publication

Informed consent from the parents or legal guardians of the patients/participants was obtained for the publication of their data.

Competing interests

The authors declare no competing interests.

Footnotes

Publisher's Note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

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Associated Data

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

Supplementary Materials

13023_2022_2244_MOESM1_ESM.docx (21KB, docx)

Additional file 1. Table S1: Clinical features of probands affected by COL9A3 variants. 

Data Availability Statement

Data can be made available on personal request. Variants reported in this study have been deposited in the Leiden Open Variation Database (LOVD) and are available through the following variant accession numbers: 0000364418, 0000364419 and 0000364420.


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