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SIX1 mutations cause branchio-oto-renal syndrome by disruption of EYA1–SIX1–DNA complexes

机译:SIX1突变通过破坏EYA1–SIX1–DNA复合物而导致分支-耳肾综合征

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摘要

Urinary tract malformations constitute the most frequent cause of chronic renal failure in the first two decades of life. Branchio-otic (BO) syndrome is an autosomal dominant developmental disorder characterized by hearing loss. In branchio-oto-renal (BOR) syndrome, malformations of the kidney or urinary tract are associated. Haploinsufficiency for the human gene EYA1, a homologue of the Drosophila gene eyes absent (eya), causes BOR and BO syndromes. We recently mapped a locus for BOR/BO syndrome (BOS3) to human chromosome 14q23.1. Within the 33-megabase critical genetic interval, we located the SIX1, SIX4, and SIX6 genes, which act within a genetic network of EYA and PAX genes to regulate organogenesis. These genes, therefore, represented excellent candidate genes for BOS3. By direct sequencing of exons, we identified three different SIX1 mutations in four BOR/BO kindreds, thus identifying SIX1 as a gene causing BOR and BO syndromes. To elucidate how these mutations cause disease, we analyzed the functional role of these SIX1 mutations with respect to protein–protein and protein–DNA interactions. We demonstrate that all three mutations are crucial for Eya1–Six1 interaction, and the two mutations within the homeodomain region are essential for specific Six1–DNA binding. Identification of SIX1 mutations as causing BOR/BO offers insights into the molecular basis of otic and renal developmental diseases in humans.
机译:泌尿道畸形是生命​​最初二十年中慢性肾衰竭的最常见原因。分支性(BO)综合征是一种以听力损失为特征的常染色体显性发育障碍。在支气管肾综合征(BOR)综合征中,伴有肾脏或泌尿道畸形。人类基因EYA1(果蝇基因的眼睛不存在(eya)的同系物)的单倍剂量不足会导致BOR和BO综合征。我们最近将BOR / BO综合征(BOS3)的基因座定位于人类染色体14q23.1。在33兆碱基的关键遗传区间内,我们找到了SIX1,SIX4和SIX6基因,它们在EYA和PAX基因的遗传网络内起作用,以调节器官发生。因此,这些基因代表了BOS3的优秀候选基因。通过外显子的直接测序,我们在四个BOR / BO亲戚中鉴定了三个不同的SIX1突变,从而将SIX1鉴定为导致BOR和BO综合征的基因。为了阐明这些突变如何导致疾病,我们分析了这些SIX1突变在蛋白质-蛋白质和蛋白质-DNA相互作用方面的功能作用。我们证明,所有三个突变对于Eya1–Six1相互作用至关重要,而同源域区域内的两个突变对于特定的Six1-DNA结合至关重要。鉴定引起BOR / BO的SIX1突变可深入了解人类耳部和肾脏发育疾病的分子基础。

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