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Published in: Osteoporosis International 4/2017

01-04-2017 | Original Article

Novel mutations in the SEC24D gene in Chinese families with autosomal recessive osteogenesis imperfecta

Authors: H. Zhang, H. Yue, C. Wang, J. Gu, J. He, W. Fu, W. Hu, Z. Zhang

Published in: Osteoporosis International | Issue 4/2017

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Abstract

Summary

We sought to characterize the phenotypes and identify the SEC24D gene mutations associated with Chinese families of osteogenesis imperfecta (OI). Using whole-exome sequencing, we discovered two novel compound SEC24D mutations of OI patients. Our study extended both the phenotypic and the genotype of the OI patients with SEC24D mutations.

Introduction

To date, only three compound heterozygous mutations in the SEC24D gene have been found to cause recessively inherited forms of OI. We sought to characterize the phenotypes and to identify the SEC24D gene mutations associated with Chinese families with OI.

Methods

Using whole-exome sequencing in two probands, we identified two novel compound heterozygous mutations in SEC24D. In family 1, the proband was a 23-year-old male; he had recurrent fractures and dentinogenesis imperfecta. His anterior fontanel was not closed, and he showed facial dysmorphism. A computed tomography three-dimensional imaging of the cranium showed skull deformities associated with a broad ossification defect in the frontoapical area, a widened sagittal suture, and Wormian bones. In family 2, the proband was a 7-year-old boy, who also had recurrent fractures and dentinogenesis imperfecta. His anterior fontanel was not closed, and he did not have obvious facial dysmorphism.

Results

We identified one novel compound heterozygous missense substitution in the proband in family 1, including c.2723G>A (p. Cys908Tyr) and c.2842T>C (p. Ser948Pro). In the proband in family 2, we identified another novel compound heterozygous missense substitution, including c.938G>A (p. Arg313His) and c.875C>T (p. Pro292Leu).

Conclusions

We discovered two novel compound SEC24D mutations of autosomal recessive OI patients. Our study extended both the phenotypic and the genotypic spectrum of the autosomal recessive OI patients with SEC24D mutations.
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Literature
1.
go back to reference Cheung MS, Glorieux FH (2008) Osteogenesis imperfecta: update on presentation and management. Rev Endocr Metab Disord 9:153–160CrossRefPubMed Cheung MS, Glorieux FH (2008) Osteogenesis imperfecta: update on presentation and management. Rev Endocr Metab Disord 9:153–160CrossRefPubMed
2.
go back to reference Morello R, Bertin TK, Chen Y, Hicks J, Tonachini L, Monticone M, Castagnola P, Rauch F, Glorieux FH, Vranka J, Bachinger HP, Pace JM, Schwarze U, Byers PH, Weis M, Fernandes RJ, Eyre DR, Yao Z, Boyce BF, Lee B (2006) CRTAP is required for prolyl 3-hydroxylation and mutations cause recessive osteogenesis imperfecta. Cell 127:291–304CrossRefPubMed Morello R, Bertin TK, Chen Y, Hicks J, Tonachini L, Monticone M, Castagnola P, Rauch F, Glorieux FH, Vranka J, Bachinger HP, Pace JM, Schwarze U, Byers PH, Weis M, Fernandes RJ, Eyre DR, Yao Z, Boyce BF, Lee B (2006) CRTAP is required for prolyl 3-hydroxylation and mutations cause recessive osteogenesis imperfecta. Cell 127:291–304CrossRefPubMed
3.
go back to reference Barnes AM, Chang W, Morello R, Cabral WA, Weis M, Eyre DR, Leikin S, Makareeva E, Kuznetsova N, Uveges TE, Ashok A, Flor AW, Mulvihill JJ, Wilson PL, Sundaram UT, Lee B, Marini JC (2006) Deficiency of cartilage-associated protein in recessive lethal osteogenesis imperfecta. N Engl J Med 355:2757–2764CrossRefPubMed Barnes AM, Chang W, Morello R, Cabral WA, Weis M, Eyre DR, Leikin S, Makareeva E, Kuznetsova N, Uveges TE, Ashok A, Flor AW, Mulvihill JJ, Wilson PL, Sundaram UT, Lee B, Marini JC (2006) Deficiency of cartilage-associated protein in recessive lethal osteogenesis imperfecta. N Engl J Med 355:2757–2764CrossRefPubMed
5.
go back to reference Van Dijk FS, Sillence DO (2014) Osteogenesis imperfecta: clinical diagnosis, nomenclature and severity assessment. Am J Med Genet A 164a:1470–1481CrossRefPubMed Van Dijk FS, Sillence DO (2014) Osteogenesis imperfecta: clinical diagnosis, nomenclature and severity assessment. Am J Med Genet A 164a:1470–1481CrossRefPubMed
6.
go back to reference Garbes L, Kim K, Riess A, Hoyer-Kuhn H, Beleggia F, Bevot A, Kim MJ, Huh YH, Kweon HS, Savarirayan R, Amor D, Kakadia PM, Lindig T, Kagan KO, Becker J, Boyadjiev SA, Wollnik B, Semler O, Bohlander SK, Kim J, Netzer C (2015) Mutations in SEC24D, encoding a component of the COPII machinery, cause a syndromic form of osteogenesis imperfecta. Am J Hum Genet 96:432–439CrossRefPubMedPubMedCentral Garbes L, Kim K, Riess A, Hoyer-Kuhn H, Beleggia F, Bevot A, Kim MJ, Huh YH, Kweon HS, Savarirayan R, Amor D, Kakadia PM, Lindig T, Kagan KO, Becker J, Boyadjiev SA, Wollnik B, Semler O, Bohlander SK, Kim J, Netzer C (2015) Mutations in SEC24D, encoding a component of the COPII machinery, cause a syndromic form of osteogenesis imperfecta. Am J Hum Genet 96:432–439CrossRefPubMedPubMedCentral
7.
go back to reference Moosa S, Chung BH, Tung JY, Altmuller J, Thiele H, Nurnberg P, Netzer C, Nishimura G, Wollnik B (2015) Mutations in SEC24D cause autosomal recessive osteogenesis imperfecta. Clin Genet. doi:10.1111/cge.12678 [Epub ahead of print]PubMed Moosa S, Chung BH, Tung JY, Altmuller J, Thiele H, Nurnberg P, Netzer C, Nishimura G, Wollnik B (2015) Mutations in SEC24D cause autosomal recessive osteogenesis imperfecta. Clin Genet. doi:10.​1111/​cge.​12678 [Epub ahead of print]PubMed
8.
go back to reference Zhang ZL, Zhang H, Ke YH, Yue H, Xiao WJ, Yu JB, Gu JM, Hu WW, Wang C, He JW, Fu WZ (2012) The identification of novel mutations in COL1A1, COL1A2, and LEPRE1 genes in Chinese patients with osteogenesis imperfecta. J Bone Miner Metab 30:69–77CrossRefPubMed Zhang ZL, Zhang H, Ke YH, Yue H, Xiao WJ, Yu JB, Gu JM, Hu WW, Wang C, He JW, Fu WZ (2012) The identification of novel mutations in COL1A1, COL1A2, and LEPRE1 genes in Chinese patients with osteogenesis imperfecta. J Bone Miner Metab 30:69–77CrossRefPubMed
9.
go back to reference Zhang Z, Li M, He JW, Fu WZ, Zhang CQ, Zhang ZL (2013) Phenotype and genotype analysis of Chinese patients with osteogenesis imperfecta type V. PLoS One 8:e72337CrossRefPubMedPubMedCentral Zhang Z, Li M, He JW, Fu WZ, Zhang CQ, Zhang ZL (2013) Phenotype and genotype analysis of Chinese patients with osteogenesis imperfecta type V. PLoS One 8:e72337CrossRefPubMedPubMedCentral
10.
go back to reference Zhou P, Liu Y, Lv F, Nie M, Jiang Y, Wang O, Xia W, Xing X, Li M (2014) Novel mutations in FKBP10 and PLOD2 cause rare Bruck syndrome in Chinese patients. PLoS One 9:e107594CrossRefPubMedPubMedCentral Zhou P, Liu Y, Lv F, Nie M, Jiang Y, Wang O, Xia W, Xing X, Li M (2014) Novel mutations in FKBP10 and PLOD2 cause rare Bruck syndrome in Chinese patients. PLoS One 9:e107594CrossRefPubMedPubMedCentral
11.
go back to reference Lv F, Xu XJ, Wang JY, Liu Y, Asan WJW, Song LJ, Song YW, Jiang Y, Wang O, Xia WB, Xing XP, Li M (2016) Two novel mutations in TMEM38B result in rare autosomal recessive osteogenesis imperfecta. J Hum Genet 61:539–545CrossRefPubMed Lv F, Xu XJ, Wang JY, Liu Y, Asan WJW, Song LJ, Song YW, Jiang Y, Wang O, Xia WB, Xing XP, Li M (2016) Two novel mutations in TMEM38B result in rare autosomal recessive osteogenesis imperfecta. J Hum Genet 61:539–545CrossRefPubMed
12.
go back to reference Zhang H, He JW, Gao G, Yue H, Yu JB, Hu WW, Gu JM, Hu YQ, Li M, Fu WZ, Liu YJ, Zhang ZL (2010) Polymorphisms in the HOXD4 gene are not associated with peak bone mineral density in Chinese nuclear families. Acta Pharmacol Sin 31:977–983CrossRefPubMedPubMedCentral Zhang H, He JW, Gao G, Yue H, Yu JB, Hu WW, Gu JM, Hu YQ, Li M, Fu WZ, Liu YJ, Zhang ZL (2010) Polymorphisms in the HOXD4 gene are not associated with peak bone mineral density in Chinese nuclear families. Acta Pharmacol Sin 31:977–983CrossRefPubMedPubMedCentral
13.
go back to reference Maynard LM, Guo SS, Chumlea WC, Roche AF, Wisemandle WA, Zeller CM, Towne B, Siervogel RM (1998) Total-body and regional bone mineral content and areal bone mineral density in children aged 8–18 y: the Fels Longitudinal Study. Am J Clin Nutr 68:1111–1117PubMed Maynard LM, Guo SS, Chumlea WC, Roche AF, Wisemandle WA, Zeller CM, Towne B, Siervogel RM (1998) Total-body and regional bone mineral content and areal bone mineral density in children aged 8–18 y: the Fels Longitudinal Study. Am J Clin Nutr 68:1111–1117PubMed
14.
go back to reference Lu HK, Zhang Z, Ke YH, He JW, Fu WZ, Zhang CQ, Zhang ZL (2012) High prevalence of vitamin D insufficiency in China: relationship with the levels of parathyroid hormone and markers of bone turnover. PLoS One 7:e47264CrossRefPubMedPubMedCentral Lu HK, Zhang Z, Ke YH, He JW, Fu WZ, Zhang CQ, Zhang ZL (2012) High prevalence of vitamin D insufficiency in China: relationship with the levels of parathyroid hormone and markers of bone turnover. PLoS One 7:e47264CrossRefPubMedPubMedCentral
15.
go back to reference He J, Zhang H, Wang C, Zhang Z, Yue H, Hu W, Gu J, Fu W, Hu Y, Li M, Liu Y, Zheng H, Zhang Z (2014) Associations of serum sclerostin and polymorphisms in the SOST gene with bone mineral density and markers of bone metabolism in postmenopausal Chinese women. J Clin Endocrinol Metab 99:E665–E673CrossRefPubMed He J, Zhang H, Wang C, Zhang Z, Yue H, Hu W, Gu J, Fu W, Hu Y, Li M, Liu Y, Zheng H, Zhang Z (2014) Associations of serum sclerostin and polymorphisms in the SOST gene with bone mineral density and markers of bone metabolism in postmenopausal Chinese women. J Clin Endocrinol Metab 99:E665–E673CrossRefPubMed
16.
go back to reference Li Y, Vinckenbosch N, Tian G, Huerta-Sanchez E, Jiang T, Jiang H, Albrechtsen A, Andersen G, Cao H, Korneliussen T, Grarup N, Guo Y, Hellman I, Jin X, Li Q, Liu J, Liu X, Sparso T, Tang M, Wu H, Wu R, Yu C, Zheng H, Astrup A, Bolund L, Holmkvist J, Jorgensen T, Kristiansen K, Schmitz O, Schwartz TW, Zhang X, Li R, Yang H, Wang J, Hansen T, Pedersen O, Nielsen R, Wang J (2010) Resequencing of 200 human exomes identifies an excess of low-frequency non-synonymous coding variants. Nat Genet 42:969–972CrossRefPubMed Li Y, Vinckenbosch N, Tian G, Huerta-Sanchez E, Jiang T, Jiang H, Albrechtsen A, Andersen G, Cao H, Korneliussen T, Grarup N, Guo Y, Hellman I, Jin X, Li Q, Liu J, Liu X, Sparso T, Tang M, Wu H, Wu R, Yu C, Zheng H, Astrup A, Bolund L, Holmkvist J, Jorgensen T, Kristiansen K, Schmitz O, Schwartz TW, Zhang X, Li R, Yang H, Wang J, Hansen T, Pedersen O, Nielsen R, Wang J (2010) Resequencing of 200 human exomes identifies an excess of low-frequency non-synonymous coding variants. Nat Genet 42:969–972CrossRefPubMed
17.
go back to reference Zhang Z, Xia W, He J, Zhang Z, Ke Y, Yue H, Wang C, Zhang H, Gu J, Hu W, Fu W, Hu Y, Li M, Liu Y (2012) Exome sequencing identifies SLCO2A1 mutations as a cause of primary hypertrophic osteoarthropathy. Am J Hum Genet 90:125–132CrossRefPubMedPubMedCentral Zhang Z, Xia W, He J, Zhang Z, Ke Y, Yue H, Wang C, Zhang H, Gu J, Hu W, Fu W, Hu Y, Li M, Liu Y (2012) Exome sequencing identifies SLCO2A1 mutations as a cause of primary hypertrophic osteoarthropathy. Am J Hum Genet 90:125–132CrossRefPubMedPubMedCentral
18.
go back to reference DePristo MA, Banks E, Poplin R, Garimella KV, Maguire JR, Hartl C, Philippakis AA, del Angel G, Rivas MA, Hanna M, McKenna A, Fennell TJ, Kernytsky AM, Sivachenko AY, Cibulskis K, Gabriel SB, Altshuler D, Daly MJ (2011) A framework for variation discovery and genotyping using next-generation DNA sequencing data. Nat Genet 43:491–498CrossRefPubMedPubMedCentral DePristo MA, Banks E, Poplin R, Garimella KV, Maguire JR, Hartl C, Philippakis AA, del Angel G, Rivas MA, Hanna M, McKenna A, Fennell TJ, Kernytsky AM, Sivachenko AY, Cibulskis K, Gabriel SB, Altshuler D, Daly MJ (2011) A framework for variation discovery and genotyping using next-generation DNA sequencing data. Nat Genet 43:491–498CrossRefPubMedPubMedCentral
19.
go back to reference Shi Y, Li Y, Zhang D, Zhang H, Li Y, Lu F, Liu X, He F, Gong B, Cai L, Li R, Liao S, Ma S, Lin H, Cheng J, Zheng H, Shan Y, Chen B, Hu J, Jin X, Zhao P, Chen Y, Zhang Y, Lin Y, Li X, Fan Y, Yang H, Wang J, Yang Z (2011) Exome sequencing identifies ZNF644 mutations in high myopia. PLoS Genet 7:e1002084CrossRefPubMedPubMedCentral Shi Y, Li Y, Zhang D, Zhang H, Li Y, Lu F, Liu X, He F, Gong B, Cai L, Li R, Liao S, Ma S, Lin H, Cheng J, Zheng H, Shan Y, Chen B, Hu J, Jin X, Zhao P, Chen Y, Zhang Y, Lin Y, Li X, Fan Y, Yang H, Wang J, Yang Z (2011) Exome sequencing identifies ZNF644 mutations in high myopia. PLoS Genet 7:e1002084CrossRefPubMedPubMedCentral
20.
21.
go back to reference Cole DE, Carpenter TO (1987) Bone fragility, craniosynostosis, ocular proptosis, hydrocephalus, and distinctive facial features: a newly recognized type of osteogenesis imperfecta. J Pediatr 110:76–80CrossRefPubMed Cole DE, Carpenter TO (1987) Bone fragility, craniosynostosis, ocular proptosis, hydrocephalus, and distinctive facial features: a newly recognized type of osteogenesis imperfecta. J Pediatr 110:76–80CrossRefPubMed
22.
go back to reference Rauch F, Fahiminiya S, Majewski J, Carrot-Zhang J, Boudko S, Glorieux F, Mort JS, Bachinger HP, Moffatt P (2015) Cole-carpenter syndrome is caused by a heterozygous missense mutation in P4HB. Am J Hum Genet 96:425–431CrossRefPubMedPubMedCentral Rauch F, Fahiminiya S, Majewski J, Carrot-Zhang J, Boudko S, Glorieux F, Mort JS, Bachinger HP, Moffatt P (2015) Cole-carpenter syndrome is caused by a heterozygous missense mutation in P4HB. Am J Hum Genet 96:425–431CrossRefPubMedPubMedCentral
24.
go back to reference Ohisa S, Inohaya K, Takano Y, Kudo A (2010) sec24d encoding a component of COPII is essential for vertebra formation, revealed by the analysis of the medaka mutant, vbi. Dev Biol 342:85–95CrossRefPubMed Ohisa S, Inohaya K, Takano Y, Kudo A (2010) sec24d encoding a component of COPII is essential for vertebra formation, revealed by the analysis of the medaka mutant, vbi. Dev Biol 342:85–95CrossRefPubMed
Metadata
Title
Novel mutations in the SEC24D gene in Chinese families with autosomal recessive osteogenesis imperfecta
Authors
H. Zhang
H. Yue
C. Wang
J. Gu
J. He
W. Fu
W. Hu
Z. Zhang
Publication date
01-04-2017
Publisher
Springer London
Published in
Osteoporosis International / Issue 4/2017
Print ISSN: 0937-941X
Electronic ISSN: 1433-2965
DOI
https://doi.org/10.1007/s00198-016-3866-2

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