COL10A1上的p.W651fsX666突变导致正常胶原X的三聚化受损,从而诱导Schmid型干骺端软骨发育不良。

IF 3.1 2区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jingye Yang, Jing Zhang, Qingxiang Lu, Haiying Tian, Ke Wang, Zhi Liu, Yu Xiong, Yadong Li, Ning Ma, Hongxia Tian, Zhongxue Zhou, Ding'an Zhou
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引用次数: 0

摘要

无义介导的衰变(NMD)导致突变型胶原X型α 1链(COL10A1) mRNA降解导致单倍体功能不全,这被认为是涉及无义突变的schmid型干骺端软骨发育不良(SMCD)的发病机制。然而,这一机制并不能完全解释SMCD的复杂性。在这项研究中,我们在一个患有SMCD的两代家族中发现了COL10A1外显子3的c.1951_1952 InsT (p.W651 fsX666)突变,该突变与软骨发育不良表型相关。突变体COL10A1(命名为受影响的E666X-COL10A1)的mRNA衰减是由p.W651fsX666突变引起的,该突变也破坏了正常胶原x的三聚体化。然而,受影响的外源E666X-COL10A1的突变体mRNA衰减以及E666X-COL10A1 mRNA在先证体中的完全降解并不是由W651fsX666突变引起的。体外三聚分析结果表明,正常型X胶原和野生型X胶原的三聚化分别被W651fsX666和e666x -胶原X突变破坏。我们的研究结果首次揭示了正常X胶原的三聚化受损是由W651fsX666突变引起的,而突变等位基因X对正常X等位基因胶原的三聚化受损是由突变等位基因X对正常X等位基因胶原的三聚化受损造成的。这将解释施米德型干骺端软骨发育不良(MCDS)家系中受影响个体的表型变异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The p.W651fsX666 mutation on COL10A1 results in impaired trimerization of normal collagen X to induce Schmid type Metaphyseal chondrodysplasia.

Haploinsufficiency resulting from the degradation of mutant Collagen Type X Alpha 1 Chain (COL10A1) mRNA by nonsense-mediated decay (NMD) has been attributed to the pathogenesis of Schmid-type metaphyseal chondrodysplasia (SMCD) in cases involving nonsense mutations. However, this mechanism does not fully explain the complexity of SMCD. In this study, we identified a c.1951_1952 InsT (p.W651 fsX666) mutation in exon 3 of COL10A1 that is associated with chondrodysplasia phenotypes in a two-generation family with SMCD. The mRNA decay of the mutant COL10A1 (named as affected E666X-COL10A1) is caused by the p.W651fsX666 mutation, which also disrupts the trimerization of normal collagen X. However, the mutant mRNA decay of affected exogenous E666X-COL10A1, as well as the complete degradation of E666X-COL10A1 mRNA in the proband, is not significantly induced by the W651fsX666 mutation. In vitro trimerization analyses results indicate that the trimerization of normal collagen X and wild-type collagen X are disrupted by W651fsX666 and E666X-collagen X mutations, respectively, suggesting that the mutant allele collagen X may impose a dominant-negative effect on the normal collagen X. Our results are the first to reveal that the impaired trimerization of normal collagen X is caused by the W651fsX666 mutation and a dominant-negative effect on the normal allele collagen X exerted by the mutant allele collagen X, causing impaired trimerization of collagen X, which will interpret the phenotype variability among the affected individuals in the pedigree with metaphyseal chondrodysplasia type Schmid (MCDS) studied.

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来源期刊
Human molecular genetics
Human molecular genetics 生物-生化与分子生物学
CiteScore
6.90
自引率
2.90%
发文量
294
审稿时长
2-4 weeks
期刊介绍: Human Molecular Genetics concentrates on full-length research papers covering a wide range of topics in all aspects of human molecular genetics. These include: the molecular basis of human genetic disease developmental genetics cancer genetics neurogenetics chromosome and genome structure and function therapy of genetic disease stem cells in human genetic disease and therapy, including the application of iPS cells genome-wide association studies mouse and other models of human diseases functional genomics computational genomics In addition, the journal also publishes research on other model systems for the analysis of genes, especially when there is an obvious relevance to human genetics.
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