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ATAD3 gene cluster deletions cause cerebellar dysfunction associated with altered mitochondrial DNA and cholesterol metabolism

机译:ATAD3基因簇缺失会导致小脑功能异常与线粒体DNA和胆固醇代谢改变有关

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摘要

Although mitochondrial disorders are clinically heterogeneous, they frequently involve the central nervous system and are among the most common neurogenetic disorders. Identifying the causal genes has benefited enormously from advances in high-throughput sequencing technologies; however, once the defect is known, researchers face the challenge of deciphering the underlying disease mechanism. Here we characterize large biallelic deletions in the region encoding the ATAD3C, ATAD3B and ATAD3A genes. Although high homology complicates genomic analysis of the ATAD3 defects, they can be identified by targeted analysis of standard single nucleotide polymorphism array and whole exome sequencing data. We report deletions that generate chimeric ATAD3B/ATAD3A fusion genes in individuals from four unrelated families with fatal congenital pontocerebellar hypoplasia, whereas a case with genomic rearrangements affecting the ATAD3C/ATAD3B genes on one allele and ATAD3B/ATAD3A genes on the other displays later-onset encephalopathy with cerebellar atrophy, ataxia and dystonia. Fibroblasts from affected individuals display mitochondrial DNA abnormalities, associated with multiple indicators of altered cholesterol metabolism. Moreover, drug-induced perturbations of cholesterol homeostasis cause mitochondrial DNA disorganization in control cells, while mitochondrial DNA aggregation in the genetic cholesterol trafficking disorder Niemann-Pick type C disease further corroborates the interdependence of mitochondrial DNA organization and cholesterol. These data demonstrate the integration of mitochondria in cellular cholesterol homeostasis, in which ATAD3 plays a critical role. The dual problem of perturbed cholesterol metabolism and mitochondrial dysfunction could be widespread in neurological and neurodegenerative diseases.
机译:尽管线粒体疾病在临床上是异质性的,但它们经常涉及中枢神经系统,并且是最常见的神经遗传性疾病之一。高通量测序技术的进步极大地受益于鉴定病因基因。但是,一旦知道了缺陷,研究人员就面临着破解潜在疾病机理的挑战。在这里,我们表征编码ATAD3C,ATAD3B和ATAD3A基因的区域中的大等位基因缺失。尽管高度同源性使ATAD3缺陷的基因组分析复杂化,但可以通过对标准单核苷酸多态性阵列和整个外显子组测序数据进行靶向分析来鉴定它们。我们报道了在致命的先天性小脑桥发育不全的四个不相关家庭中的个体中产生嵌合嵌合的ATAD3B / ATAD3A融合基因的缺失,而一个基因组重排影响一个等位基因上的ATAD3C / ATAD3B基因,而另一个基因上的ATAD3B / ATAD3A基因在以后出现的情况下发生缺失脑病伴小脑萎缩,共济失调和肌张力障碍。受感染个体的成纤维细胞显示线粒体DNA异常,与胆固醇代谢改变的多个指标相关。此外,药物引起的胆固醇稳态紊乱会导致控制细胞中的线粒体DNA紊乱,而遗传性胆固醇运输疾病Niemann-Pick C型疾病中的线粒体DNA聚集进一步证实了线粒体DNA组织与胆固醇之间的相互依赖性。这些数据表明线粒体在细胞胆固醇稳态中的整合,其中ATAD3起着关键作用。胆固醇代谢紊乱和线粒体功能障碍的双重问题可能在神经系统疾病和神经退行性疾病中普遍存在。

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