Flavin radicals, conformational sampling and robust design principles in interprotein electron transfer: the trimethylamine dehydrogenase-electron-transferring flavoprotein complex.

David Leys, Jaswir Basran, François Talfournier, Kamaldeep K Chohan, Andrew W Munro, Michael J Sutcliffe, Nigel S Scrutton
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引用次数: 1

Abstract

TMADH (trimethylamine dehydrogenase) is a complex iron-sulphur flavoprotein that forms a soluble electron-transfer complex with ETF (electron-transferring flavoprotein). The mechanism of electron transfer between TMADH and ETF has been studied using stopped-flow kinetic and mutagenesis methods, and more recently by X-ray crystallography. Potentiometric methods have also been used to identify key residues involved in the stabilization of the flavin radical semiquinone species in ETF. These studies have demonstrated a key role for 'conformational sampling' in the electron-transfer complex, facilitated by two-site contact of ETF with TMADH. Exploration of three-dimensional space in the complex allows the FAD of ETF to find conformations compatible with enhanced electronic coupling with the 4Fe-4S centre of TMADH. This mechanism of electron transfer provides for a more robust and accessible design principle for interprotein electron transfer compared with simpler models that invoke the collision of redox partners followed by electron transfer. The structure of the TMADH-ETF complex confirms the role of key residues in electron transfer and molecular assembly, originally suggested from detailed kinetic studies in wild-type and mutant complexes, and from molecular modelling.

黄素自由基,蛋白质间电子转移的构象采样和稳健设计原则:三甲胺脱氢酶-电子转移黄素蛋白复合物。
TMADH(三甲胺脱氢酶)是一种铁硫络合物黄蛋白,可与ETF(电子转移黄蛋白)形成可溶性电子转移络合物。TMADH和ETF之间的电子转移机制已经通过停止流动动力学和诱变方法进行了研究,最近通过x射线晶体学进行了研究。电位测定法也被用来鉴定在ETF中黄素自由基半醌类稳定中涉及的关键残基。这些研究已经证明了“构象取样”在电子转移络合物中的关键作用,这是由ETF与TMADH的两点接触促成的。对配合物三维空间的探索使得ETF的FAD能够找到与TMADH的4Fe-4S中心增强电子耦合相容的构象。这种电子转移机制为蛋白质间电子转移提供了一种更强大、更容易理解的设计原则,而不是简单的模型,即调用氧化还原伙伴的碰撞,然后是电子转移。TMADH-ETF复合物的结构证实了关键残基在电子转移和分子组装中的作用,这最初是通过对野生型和突变型复合物的详细动力学研究以及分子模型提出的。
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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