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含氧光合作用中的初始电荷分离步骤。

The initial charge separation step in oxygenic photosynthesis.

机构信息

Department of Chemistry, University of California, Berkeley, CA, 94720, United States.

Molecular Biophysics and Integrated Bioimaging Division, Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, United States.

出版信息

Nat Commun. 2022 Apr 27;13(1):2275. doi: 10.1038/s41467-022-29983-1.

Abstract

Photosystem II is crucial for life on Earth as it provides oxygen as a result of photoinduced electron transfer and water splitting reactions. The excited state dynamics of the photosystem II-reaction center (PSII-RC) has been a matter of vivid debate because the absorption spectra of the embedded chromophores significantly overlap and hence it is extremely difficult to distinguish transients. Here, we report the two-dimensional electronic-vibrational spectroscopic study of the PSII-RC. The simultaneous resolution along both the visible excitation and infrared detection axis is crucial in allowing for the character of the excitonic states and interplay between them to be clearly distinguished. In particular, this work demonstrates that the mixed exciton-charge transfer state, previously proposed to be responsible for the far-red light operation of photosynthesis, is characterized by the ChlPhe radical pair and can be directly prepared upon photoexcitation. Further, we find that the initial electron acceptor in the PSII-RC is Phe, rather than P, regardless of excitation wavelength.

摘要

光系统 II 对于地球上的生命至关重要,因为它通过光诱导电子转移和水分解反应产生氧气。光系统 II-反应中心 (PSII-RC) 的激发态动力学一直是激烈争论的话题,因为嵌入的发色团的吸收光谱显着重叠,因此极难区分瞬态。在这里,我们报告了 PSII-RC 的二维电子-振动光谱研究。在可见激发和红外探测轴上同时进行分辨率至关重要,这使得能够清楚地区分激子态的特征及其相互作用。特别是,这项工作表明,先前被认为负责光合作用远红光操作的混合激子-电荷转移态的特征是 ChiPhe 自由基对,可以通过光激发直接制备。此外,我们发现 PSII-RC 中的初始电子受体是 Phe,而不是 P,无论激发波长如何。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4803/9046298/531336aaa47f/41467_2022_29983_Fig1_HTML.jpg

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