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光合反应中心中电子转移的离散极化子模拟

Dispersed polaron simulations of electron transfer in photosynthetic reaction centers.

作者信息

Warshel A, Chu Z T, Parson W W

机构信息

Department of Chemistry, University of Southern California, Los Angeles 90007.

出版信息

Science. 1989 Oct 6;246(4926):112-6. doi: 10.1126/science.2675313.

Abstract

A microscopic method for simulating quantum mechanical, nuclear tunneling effects in biological electron transfer reactions is presented and applied to several electron transfer steps in photosynthetic bacterial reaction centers. In this "dispersed polaron" method the fluctuations of the protein and the electron carriers are projected as effective normal modes onto an appropriate reaction coordinate and used to evaluate the quantum mechanical rate constant. The simulations, based on the crystallographic structure of the reaction center from Rhodopseudomonas viridis, focus on electron transfer from a bacteriopheophytin to a quinone and the subsequent back-reaction. The rates of both of these reactions are almost independent of temperature or even increase with decreasing temperature. The simulations reproduce this unusual temperature dependence in a qualitative way, without the use of adjustable parameters for the protein's Franck-Condon factors. The observed dependence of the back-reaction on the free energy of the reaction also is reproduced, including the special behavior in the "inverted region."

摘要

提出了一种用于模拟生物电子转移反应中量子力学核隧穿效应的微观方法,并将其应用于光合细菌反应中心的几个电子转移步骤。在这种“离散极化子”方法中,蛋白质和电子载体的涨落作为有效简正模式投影到适当的反应坐标上,并用于评估量子力学速率常数。基于绿硫红假单胞菌反应中心的晶体结构进行的模拟,重点关注从细菌叶绿素到醌的电子转移以及随后的逆反应。这两个反应的速率几乎与温度无关,甚至随温度降低而增加。模拟以定性方式再现了这种不寻常的温度依赖性,而无需为蛋白质的弗兰克 - 康登因子使用可调参数。还再现了观察到的逆反应对反应自由能的依赖性,包括“反转区域”中的特殊行为。

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