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通过时间分辨傅里叶变换红外光谱探测特定的分子过程和中间产物:在菌紫质光循环中的应用。

Probing specific molecular processes and intermediates by time-resolved Fourier transform infrared spectroscopy: application to the bacteriorhodopsin photocycle.

机构信息

Unitat de Biofísica, Departament de Bioquímica i de Biologia Molecular, and Centre d'Estudis en Biofísica, Universitat Autònoma de Barcelona, Barcelona 08193, Spain.

出版信息

J Phys Chem B. 2011 Jun 23;115(24):7972-85. doi: 10.1021/jp201739w. Epub 2011 May 26.

Abstract

We present a general approach for probing the kinetics of specific molecular processes in proteins by time-resolved Fourier transform infrared (IR) spectroscopy. Using bacteriorhodopsin (bR) as a model we demonstrate that by appropriately monitoring some selected IR bands it is possible obtaining the kinetics of the most important events occurring in the photocycle, namely changes in the chromophore and the protein backbone conformation, and changes in the protonation state of the key residues implicated in the proton transfers. Besides confirming widely accepted views of the bR photocycle, our analysis also sheds light into some disputed issues: the degree of retinal torsion in the L intermediate to respect the ground state; the possibility of a proton transfer from Asp85 to Asp212; the relationship between the protonation/deprotonation of Asp85 and the proton release complex; and the timing of the protein backbone dynamics. By providing a direct way to estimate the kinetics of photocycle intermediates the present approach opens new prospects for a robust quantitative kinetic analysis of the bR photocycle, which could also benefit the study of other proteins involved in photosynthesis, in phototaxis, or in respiratory chains.

摘要

我们提出了一种通过时间分辨傅里叶变换红外(IR)光谱探测蛋白质中特定分子过程动力学的通用方法。使用菌紫质(bR)作为模型,我们证明通过适当监测一些选定的 IR 带,可以获得光循环中最重要事件的动力学,即发色团和蛋白质骨架构象的变化,以及关键残基的质子化状态变化,这些残基参与质子转移。除了证实 bR 光循环的广泛接受观点外,我们的分析还揭示了一些有争议的问题:L 中间态中视黄醛的扭转程度以尊重基态;从 Asp85 到 Asp212 的质子转移的可能性;Asp85 的质子化/去质子化与质子释放复合物之间的关系;以及蛋白质骨架动力学的时间。通过提供一种直接估计光循环中间体动力学的方法,本方法为 bR 光循环的稳健定量动力学分析开辟了新的前景,这也将有益于光合作用、趋光性或呼吸链中涉及的其他蛋白质的研究。

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