Computational analysis of a novel mutation in ETFDH gene highlights its long-range effects on the FAD-binding motif

Q3 Biochemistry, Genetics and Molecular Biology BMC Structural Biology Pub Date : 2011-10-21 DOI:10.1186/1472-6807-11-43
Tze-Kiong Er, Chih-Chieh Chen, Yen-Yi Liu, Hui-Chiu Chang, Yin-Hsiu Chien, Jan-Gowth Chang, Jenn-Kang Hwang, Yuh-Jyh Jong
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引用次数: 28

Abstract

Multiple acyl-coenzyme A dehydrogenase deficiency (MADD) is an autosomal recessive disease caused by the defects in the mitochondrial electron transfer system and the metabolism of fatty acids. Recently, mutations in electron transfer flavoprotein dehydrogenase (ETFDH) gene, encoding electron transfer flavoprotein:ubiquinone oxidoreductase (ETF:QO) have been reported to be the major causes of riboflavin-responsive MADD. To date, no studies have been performed to explore the functional impact of these mutations or their mechanism of disrupting enzyme activity.

High resolution melting (HRM) analysis and sequencing of the entire ETFDH gene revealed a novel mutation (p.Phe128Ser) and the hotspot mutation (p.Ala84Thr) from a patient with MADD. According to the predicted 3D structure of ETF:QO, the two mutations are located within the flavin adenine dinucleotide (FAD) binding domain; however, the two residues do not have direct interactions with the FAD ligand. Using molecular dynamics (MD) simulations and normal mode analysis (NMA), we found that the p.Ala84Thr and p.Phe128Ser mutations are most likely to alter the protein structure near the FAD binding site as well as disrupt the stability of the FAD binding required for the activation of ETF:QO. Intriguingly, NMA revealed that several reported disease-causing mutations in the ETF:QO protein show highly correlated motions with the FAD-binding site.

Based on the present findings, we conclude that the changes made to the amino acids in ETF:QO are likely to influence the FAD-binding stability.

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对ETFDH基因新突变的计算分析强调了其对fad结合基序的长期影响
多酰基辅酶A脱氢酶缺乏症(Multiple酰基辅酶A dehydrogenase deficiency, MADD)是由线粒体电子传递系统和脂肪酸代谢缺陷引起的常染色体隐性遗传病。最近,编码电子转移黄蛋白:泛醌氧化还原酶(ETF:QO)的电子转移黄蛋白脱氢酶(ETFDH)基因突变被报道为核黄素反应性MADD的主要原因。迄今为止,还没有研究探索这些突变的功能影响或其破坏酶活性的机制。高分辨率熔融(HRM)分析和整个ETFDH基因测序发现了一个来自MADD患者的新突变(p.Phe128Ser)和热点突变(p.Ala84Thr)。根据预测的ETF:QO的三维结构,这两个突变位于黄素腺嘌呤二核苷酸(FAD)结合域内;然而,这两个残基与FAD配体没有直接的相互作用。通过分子动力学(MD)模拟和正常模式分析(NMA),我们发现p.Ala84Thr和p.Phe128Ser突变最有可能改变FAD结合位点附近的蛋白质结构,并破坏激活ETF:QO所需的FAD结合的稳定性。有趣的是,NMA揭示了ETF:QO蛋白中几种报道的致病突变与fad结合位点高度相关。基于目前的研究结果,我们得出结论,ETF:QO中氨基酸的变化可能会影响fad结合的稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.60
自引率
0.00%
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0
审稿时长
>12 weeks
期刊介绍: BMC Structural Biology is an open access, peer-reviewed journal that considers articles on investigations into the structure of biological macromolecules, including solving structures, structural and functional analyses, and computational modeling.
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