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Three-Dimensional Model of Human Nicotinamide Nucleotide Transhydrogenase (NNT) and Sequence-Structure Analysis of its Disease-Causing Variations

机译:人烟酰胺核苷酸转氢酶(NNT)的三维模型及其致病变异的序列结构分析

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摘要

Defective mitochondrial proteins are emerging as major contributors to human disease. Nicotinamide nucleotide transhydrogenase (NNT), a widely expressed mitochondrial protein, has a crucial role in the defence against oxidative stress. NNT variations have recently been reported in patients with familial glucocorticoid deficiency (FGD) and in patients with heart failure. Moreover, knockout animal models suggest that NNT has a major role in diabetes mellitus and obesity. In this study, we used experimental structures of bacterial transhydrogenases to generate a structural model of human NNT (H-NNT). Structure-based analysis allowed the identification of H-NNT residues forming the NAD binding site, the proton canal and the large interaction site on the H-NNT dimer. In addition, we were able to identify key motifs that allow conformational changes adopted by domain III in relation to its functional status, such as the flexible linker between domains II and III and the salt bridge formed by H-NNT Arg882 and Asp830. Moreover, integration of sequence and structure data allowed us to study the structural and functional effect of deleterious amino acid substitutions causing FGD and left ventricular non-compaction cardiomyopathy. In conclusion, interpretation of the function-structure relationship of HNNT contributes to our understanding of mitochondrial disorders. Published 2016 Wiley Periodicals, Inc.
机译:线粒体蛋白的缺陷正在成为人类疾病的主要诱因。烟酰胺核苷酸转氢酶(NNT)是一种广泛表达的线粒体蛋白,在防御氧化应激方面起着至关重要的作用。最近有家族性糖皮质激素缺乏症(FGD)的患者和心力衰竭的患者出现NNT变异的报道。此外,基因敲除动物模型表明NNT在糖尿病和肥胖症中起主要作用。在这项研究中,我们使用细菌转氢酶的实验结构来生成人NNT(H-NNT)的结构模型。基于结构的分析允许鉴定形成NAD结合位点,质子管和H-NNT二聚体上较大的相互作用位点的H-NNT残基。此外,我们能够鉴定出允许域III对其功能状态进行构象变化的关键基序,例如域II和III之间的柔性接头以及H-NNT Arg882和Asp830形成的盐桥。此外,序列和结构数据的整合使我们能够研究引起FGD和左心室非致密性心肌病的有害氨基酸取代的结构和功能作用。总之,HNNT功能结构关系的解释有助于我们对线粒体疾病的理解。 2016年出版的Wiley Periodicals,Inc.

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