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蛋白质中电场的远程调制。

Long-Range Modulations of Electric Fields in Proteins.

机构信息

Institut für Chemie , Technische Universität Berlin , Sekr. L1, Müller-Breslau-Straße 10 , D-10623 Berlin , Germany.

Institut für Chemie , Technische Universität Berlin , Sekr. PC14, Straße des 17. Juni 135 , D-10623 Berlin , Germany.

出版信息

J Phys Chem B. 2018 Sep 6;122(35):8330-8342. doi: 10.1021/acs.jpcb.8b03870. Epub 2018 Aug 28.

Abstract

Electrostatic interactions are essential for controlling the protein structure and function. Whereas so far experimental and theoretical efforts focused on the effect of local electrostatics, this work aims at elucidating the long-range modulation of electric fields in proteins upon binding to charged surfaces. The study is based on cytochrome c (Cytc) variants carrying nitrile reporters for the vibrational Stark effect that are incorporated into the protein via genetic engineering and chemical modification. The Cytc variants were thoroughly characterized with respect to possible structural perturbations due to labeling. For the proteins in solution, the relative hydrogen bond occupancy and the calculated electric fields, both obtained from molecular dynamics (MD) simulations, and the experimental nitrile stretching frequencies were used to develop a relationship for separating hydrogen-bonding and non-hydrogen-bonding electric field effects. This relationship provides an excellent description for the stable Cytc variants in solution. For the proteins bound to Au electrodes coated with charged self-assembled monolayers (SAMs), the underlying MD simulations can only account for the electric field changes Δ E due to the formation of the electrostatic SAM-Cytc complexes but not for the additional contribution, Δ E, representing the consequences of the potential drops over the electrode/SAM/protein interfaces. Both Δ E and Δ E, determined at distances between 20 and 30 Å with respect to the SAM surface, are comparable in magnitude to the non-hydrogen-bonding electric field in the unbound protein. This long-range modulation of the internal electric field may be of functional relevance for proteins in complexes with partner proteins (Δ E) and attached to membranes (Δ E + Δ E).

摘要

静电相互作用对于控制蛋白质的结构和功能至关重要。到目前为止,实验和理论研究都集中在局部静电的影响上,而这项工作旨在阐明蛋白质与带电表面结合时电场的长程调制。该研究基于通过遗传工程和化学修饰将带有用于振动斯塔克效应的腈报告器的细胞色素 c (Cytc)变体纳入蛋白质。对 Cytc 变体进行了彻底的表征,以确定由于标记而导致的可能结构扰动。对于溶液中的蛋白质,相对氢键占有率和计算电场,均来自分子动力学 (MD) 模拟,以及实验腈伸缩频率用于开发一种分离氢键和非氢键电场效应的关系。该关系为溶液中稳定的 Cytc 变体提供了出色的描述。对于与涂有带电自组装单层 (SAM) 的 Au 电极结合的蛋白质,基础 MD 模拟只能说明由于静电 SAM-Cytc 复合物的形成而导致的电场变化ΔE,但不能说明额外的贡献ΔE,代表电极/SAM/蛋白质界面上的电势降的后果。在距 SAM 表面 20 到 30 Å 的距离处确定的ΔE 和ΔE都与未结合蛋白质中的非氢键电场相当。这种内部电场的长程调制可能对与伴侣蛋白结合的蛋白质(ΔE)和与膜结合的蛋白质(ΔE+ΔE)具有功能相关性。

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