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一个剪接位点突变导致 EXT2 mRNA 杂合不足,从而使一个大型多发性骨软骨瘤家系呈现显性遗传特征。

A splice-site mutation leads to haploinsufficiency of EXT2 mRNA for a dominant trait in a large family with multiple osteochondromas.

机构信息

Department of Biochemistry, University of Hong Kong, Pokfulam, Hong Kong, China.

出版信息

J Orthop Res. 2010 Nov;28(11):1522-30. doi: 10.1002/jor.21162.

DOI:10.1002/jor.21162
PMID:20872591
Abstract

Multiple osteochondromas (MO) is an autosomal-dominant disorder and mutations in EXT1 and EXT2 account up to 78% of the cases studied, including missense, nonsense, frameshift, and splice-site mutations. EXT1 and EXT2 encode glycosyltransferases required for the synthesis of heparan sulfate (HS) chains. The molecular pathogenesis underlying these mutations is still largely unknown. A heterozygous c.1173 + 1G > T (EXT2) mutation was identified in a three-generation 34-member MO family and is present in all 19 affected members. The consequence of this mutation is exon 7 being spliced out, and the result is a shift in the codon-reading frame from position 360 (R360) of the amino acid sequence leading to a premature termination codon, and the mutant mRNA is degraded to an undetectable level. Interestingly, HS glycosaminoglycans were also undetectable in the cartilage cap of the tumors by immunostaining. Full penetrance of this mutation in all affected members ranging from 5 to 70 years of age suggests this primary defect in EXT2 mRNA level, in conjunction with other cellular changes such as enhanced heparanase expression, can produce profound effect on the synthesis of HS chains in cartilage, the consequence of which impacts on the regulation of chondrocyte proliferation and differentiation.

摘要

多发性骨软骨瘤(MO)是一种常染色体显性遗传病,EXT1 和 EXT2 的突变占已研究病例的 78%,包括错义突变、无义突变、移码突变和剪接位点突变。EXT1 和 EXT2 编码合成肝素硫酸(HS)链所需的糖基转移酶。这些突变的分子发病机制在很大程度上仍然未知。在一个三代 34 名 MO 家族中发现了杂合 c.1173 + 1G > T(EXT2)突变,该突变存在于所有 19 名受影响的成员中。该突变的结果是外显子 7 被剪接,导致密码子阅读框从氨基酸序列的第 360 位(R360)发生移位,导致提前终止密码子,突变的 mRNA 被降解至无法检测的水平。有趣的是,通过免疫染色,肿瘤软骨帽中的 HS 糖胺聚糖也无法检测到。这种突变在所有受影响的成员中的完全外显率从 5 岁到 70 岁不等,这表明 EXT2 mRNA 水平的这种主要缺陷,与其他细胞变化(如增强的肝素酶表达)一起,可以对软骨中 HS 链的合成产生深远的影响,其后果会影响软骨细胞的增殖和分化的调节。

相似文献

1
A splice-site mutation leads to haploinsufficiency of EXT2 mRNA for a dominant trait in a large family with multiple osteochondromas.一个剪接位点突变导致 EXT2 mRNA 杂合不足,从而使一个大型多发性骨软骨瘤家系呈现显性遗传特征。
J Orthop Res. 2010 Nov;28(11):1522-30. doi: 10.1002/jor.21162.
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Multiple osteochondromas: mutation update and description of the multiple osteochondromas mutation database (MOdb).多发性骨软骨瘤:突变更新及多发性骨软骨瘤突变数据库(MOdb)描述。
Hum Mutat. 2009 Dec;30(12):1620-7. doi: 10.1002/humu.21123.
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引用本文的文献

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The Missing Piece of the Puzzle: Unveiling the Role of Gene in Multiple Osteochondromas in a Large Cohort Study.谜题中缺失的一环:在一项大型队列研究中揭示基因在多发性骨软骨瘤中的作用
Hum Mutat. 2024 Feb 12;2024:8849348. doi: 10.1155/2024/8849348. eCollection 2024.
2
A novel mutation in ext2 caused hereditary multiple exostoses through reducing the synthesis of heparan sulfate.Ext2基因中的一种新突变通过减少硫酸乙酰肝素的合成导致遗传性多发性骨软骨瘤。
Genet Mol Biol. 2021 May 21;44(2):e20200334. doi: 10.1590/1678-4685-GMB-2020-0334. eCollection 2021.
3
Identification of pathogenic mutations in 6 Chinese families with multiple exostoses by whole-exome sequencing and multiplex ligation-dependent probe amplification: Case series.
通过全外显子组测序和多重连接依赖探针扩增技术鉴定6个中国多发性外生骨疣家系的致病突变:病例系列
Medicine (Baltimore). 2019 May;98(20):e15692. doi: 10.1097/MD.0000000000015692.
4
A splice mutation and mRNA decay of EXT2 provoke hereditary multiple exostoses.EXT2的剪接突变和mRNA降解引发遗传性多发性骨软骨瘤。
PLoS One. 2014 Apr 11;9(4):e94848. doi: 10.1371/journal.pone.0094848. eCollection 2014.
5
Clinical characteristics of hereditary multiple exostoses: a retrospective study of mainland chinese cases in recent 23 years.遗传性多发性骨软骨瘤的临床特征:对近23年中国大陆病例的回顾性研究
J Huazhong Univ Sci Technolog Med Sci. 2014 Feb;34(1):42-50. doi: 10.1007/s11596-014-1230-3. Epub 2014 Feb 6.
6
Heparan sulfate in skeletal development, growth, and pathology: the case of hereditary multiple exostoses.硫酸乙酰肝素在骨骼发育、生长和病理学中的作用:以遗传性多发性外生性骨疣为例。
Dev Dyn. 2013 Sep;242(9):1021-32. doi: 10.1002/dvdy.24010. Epub 2013 Jul 29.