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古菌十二肽的黄素光保护分子机制:光诱导电子转移和 Mg 促进的质子转移。

Molecular Mechanism of Flavin Photoprotection by Archaeal Dodecin: Photoinduced Electron Transfer and Mg-Promoted Proton Transfer.

机构信息

Interdisciplinary Center for Scientific Computing , Im Neuenheimer Feld 205A, 69120 Heidelberg, Germany.

出版信息

J Phys Chem B. 2017 Nov 22;121(46):10457-10466. doi: 10.1021/acs.jpcb.7b08597. Epub 2017 Nov 8.

DOI:10.1021/acs.jpcb.7b08597
PMID:29069901
Abstract

Photoinduced biochemical reactions are ubiquitously governed by derivatives of flavin, which is a key player in a manifold of cellular redox reactions. The photoreactivity of flavins is also one of their greatest disadvantages as the molecules are sensitive to photodegradation. To prevent this unfavorable reaction, UV-light-exposed archaea bacteria, such as Halobacterium salinarum, manage the task of protecting flavin derivatives by dodecin, a protein which stores flavins and efficiently photoprotects them. In this study, we shed light on the photoprotection mechanism, i.e., the excited state quenching mechanism by dodecin using computational methodology. Molecular dynamics (MD) simulations unraveled the hydrogen bond network in the flavin binding pocket as a starting point for proton transfer upon preceding electron transfer. Using high-level ab initio quantum chemical methods, different proton transfer channels have been investigated and an energetically feasible Mg-promoted channel has been identified fully explaining previous experimental observations. This is the first extensive theoretical study of archaeal dodecin, furthering the understanding of its photocycle and manipulation.

摘要

光诱导生化反应普遍受到黄素衍生物的控制,黄素是许多细胞氧化还原反应中的关键物质。黄素的光反应性也是其最大的缺点之一,因为这些分子容易光降解。为了防止这种不利的反应,暴露在紫外线下的古细菌,如盐杆菌,通过十二烷来完成保护黄素衍生物的任务,十二烷是一种储存黄素并有效地对其进行光保护的蛋白质。在这项研究中,我们使用计算方法阐明了光保护机制,即十二烷通过猝灭激发态来保护黄素。分子动力学(MD)模拟揭示了黄素结合口袋中的氢键网络,作为电子转移之前质子转移的起点。使用高级的从头算量子化学方法,我们研究了不同的质子转移通道,并确定了一个能量上可行的 Mg 促进通道,这完全解释了以前的实验观察。这是对古细菌十二烷的第一个广泛的理论研究,进一步加深了对其光循环和操纵的理解。

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