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时间分辨傅里叶变换红外光谱揭示橙色类胡萝卜素蛋白光激活的两步结构变化。

Two-Step Structural Changes in Orange Carotenoid Protein Photoactivation Revealed by Time-Resolved Fourier Transform Infrared Spectroscopy.

机构信息

Sorbonne Université, CNRS, Laboratoire Réactivité de Surface , UMR CNRS 7197 , F-75252 Paris , France.

Institute for Integrative Biology of the Cell (I2BC), CEA, CNRS, Université Paris-Sud, Université Paris-Saclay , 91198 Gif sur Yvette , France.

出版信息

J Phys Chem B. 2019 Apr 18;123(15):3259-3266. doi: 10.1021/acs.jpcb.9b01242. Epub 2019 Apr 4.

Abstract

The orange carotenoid protein (OCP), which is essential in cyanobacterial photoprotection, is the first photoactive protein containing a carotenoid as an active chromophore. Static and time-resolved Fourier transform infrared (FTIR) difference spectroscopy under continuous illumination at different temperatures was applied to investigate its photoactivation mechanism. Here, we demonstrate that in the OCP, the photo-induced conformational change involves at least two different steps, both in the second timescale at 277 K. Each step involves partial reorganization of α-helix domains. At early illumination times, the disappearance of a nonsolvent-exposed α-helix (negative 1651 cm band) is observed. At longer times, a 1644 cm negative band starts to bleach, showing the disappearance of a solvent-exposed α-helix, either the N-terminal extension and/or the C-terminal tail. A kinetic analysis clearly shows that these two events are asynchronous. Minor modifications in the overall FTIR difference spectra confirm that the global protein conformational change consists of-at least-two asynchronous contributions. Comparison of spectra recorded in HO and DO suggests that internal water molecules may contribute to the photoactivation mechanism.

摘要

橙黄色类胡萝卜素蛋白(OCP)是蓝藻光保护中必不可少的,它是第一个含有类胡萝卜素作为活性生色团的光活性蛋白。静态和时间分辨傅里叶变换红外(FTIR)差谱在不同温度下的连续光照下进行,以研究其光激活机制。在这里,我们证明在 OCP 中,光诱导的构象变化至少涉及两个不同的步骤,这两个步骤都在 277 K 的第二时间尺度上。每个步骤都涉及α-螺旋结构域的部分重排。在早期的光照时间内,观察到非溶剂暴露的α-螺旋(负 1651 cm 带)的消失。在更长的时间内,一个 1644 cm 的负带开始漂白,表明溶剂暴露的α-螺旋的消失,无论是 N 端延伸还是 C 端尾巴。动力学分析清楚地表明,这两个事件是异步的。对整体 FTIR 差谱的微小修正证实,整体蛋白质构象变化至少由两个异步贡献组成。在 HO 和 DO 中记录的光谱的比较表明,内部水分子可能有助于光激活机制。

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