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Bioinformatics Study of m.9053GA Mutation at the ATP6 Gene in Relation to Type 2 Diabetes Mellitus and Cataract Diseases

机译:与2型糖尿病和白内障疾病相关的ATP6基因m.9053G A突变的生物信息学研究

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摘要

The mitochondrial disease often associated with various illnesses in relation to the activity of cells metabolites and the synthesis of adenosine triphosphate (ATP), including alteration in the mitochondrial DNA. The mutation of m.9053G>A at the ATP6 gene was found in patients with type 2 diabetes mellitus (DM type 2) and cataract. Therefore, this mutation is predicted to be clinical features of the 2 diseases. ATP6 gene encodes protein subunit of ATPase6, a part of ATP synthase, which is important in the electron transfer and proton translocation in intracellular respiration system. This study aims to investigate the mutation effect of m.9053G>A at the ATP6 gene (S167N) to the structure and function of ATPase6 using bioinformatics method. The structure of ATPase6 was constructed using homology modeling method. The crystal structure of bovine’s ATP synthase (Protein Data Bank ID 5FIL) was used as a template because of high sequence similarity (77%) and coverage (96%) of the input sequence. The effect of mutation was investigated at the proton translocation channel of ATPase6. It is predicted that the channel was disrupted due to changes in electrostatic potential from serine to asparagine. Furthermore, molecular docking suggests that water binding on the proton translocation channel in the S167N mutant was different from the wild type. The result of this study is hoped to be useful in the development of a new genetic marker for DM type 2 and cataract.
机译:线粒体疾病通常与各种疾病有关,涉及细胞代谢产物的活性和三磷酸腺苷(ATP)的合成,包括线粒体DNA的改变。在患有2型糖尿病(DM 2型)和白内障的患者中发现了ATP6基因的m.9053G> A突变。因此,该突变被预测为这两种疾病的临床特征。 ATP6基因编码ATP合成酶的一部分ATPase6的蛋白质亚基,在细胞内呼吸系统的电子转移和质子转运中很重要。本研究旨在利用生物信息学方法研究m.9053G> A在ATP6基因(S167N)上的突变对ATPase6的结构和功能的影响。 ATPase6的结构采用同源建模方法构建。牛的ATP合酶(蛋白质数据库ID 5FIL)的晶体结构被用作模板,因为输入序列具有很高的序列相似性(77%)和覆盖率(96%)。在ATPase6的质子易位通道研究了突变的影响。据预测,该通道由于从丝氨酸到天冬酰胺的静电势的变化而被破坏。此外,分子对接表明S167N突变体中质子易位通道上的水结合与野生型不同。希望这项研究的结果可用于2型糖尿病和白内障的新遗传标记的开发。

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