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还原型黄素氧还蛋白中的短程电子转移:与蛋白质涨落耦合的超快非平衡动力学

Short-Range Electron Transfer in Reduced Flavodoxin: Ultrafast Nonequilibrium Dynamics Coupled with Protein Fluctuations.

作者信息

Kundu Mainak, He Ting-Fang, Lu Yangyi, Wang Lijuan, Zhong Dongping

机构信息

Department of Physics, Department of Chemistry and Biochemistry, Programs of Biophysics, Chemical Physics, and Biochemistry , The Ohio State University , Columbus , Ohio 43210 , United States.

City of Hope National Cancer Center , 1500 East Duarte Road , Duarte , California 91010 , United States.

出版信息

J Phys Chem Lett. 2018 Jun 7;9(11):2782-2790. doi: 10.1021/acs.jpclett.8b00882. Epub 2018 May 11.

Abstract

Short-range electron transfer (ET) in proteins is an ultrafast process on the similar time scales as local protein-solvent fluctuation, and thus the two dynamics are coupled. Here we use semiquinone flavodoxin and systematically characterized the photoinduced redox cycle with 11 mutations of different aromatic electron donors (tryptophan and tyrosine) and local residues to change redox properties. We observed the forward and backward ET dynamics in a few picoseconds, strongly following a stretched behavior resulting from a coupling between local environment relaxations and these ET processes. We further observed the hot vibrational-state formation through charge recombination and the subsequent cooling dynamics also in a few picoseconds. Combined with the ET studies in oxidized flavodoxin, these results coherently reveal the evolution of the ET dynamics from single to stretched exponential behaviors and thus elucidate critical time scales for the coupling. The observed hot vibration-state formation is robust and should be considered in all photoinduced back ET processes in flavoproteins.

摘要

蛋白质中的短程电子转移(ET)是一个与局部蛋白质-溶剂波动时间尺度相似的超快过程,因此这两种动力学是相互耦合的。在这里,我们使用半醌型黄素氧还蛋白,并通过11种不同芳香族电子供体(色氨酸和酪氨酸)及局部残基的突变来系统地表征光诱导氧化还原循环,以改变氧化还原性质。我们在几皮秒内观察到了正向和反向电子转移动力学,其强烈遵循由局部环境弛豫与这些电子转移过程之间的耦合所导致的拉伸行为。我们还在几皮秒内通过电荷复合观察到了热振动态的形成以及随后的冷却动力学。结合对氧化型黄素氧还蛋白的电子转移研究,这些结果连贯地揭示了电子转移动力学从单指数行为到拉伸指数行为的演变,从而阐明了耦合的关键时间尺度。观察到的热振动态形成是稳健的,在黄素蛋白的所有光诱导反向电子转移过程中都应予以考虑。

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