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对北美独行菜水溶性叶绿素结合蛋白的新见解。

New Insight into the Water-Soluble Chlorophyll-Binding Protein from Lepidium virginicum.

作者信息

Kell Adam, Bednarczyk Dominika, Acharya Khem, Chen Jinhai, Noy Dror, Jankowiak Ryszard

机构信息

Department of Chemistry, Kansas State University, Manhattan, Kansas, 66506.

Department of Biological Chemistry, Weizmann Institute of Sciences, Rehovot, 76100, Israel.

出版信息

Photochem Photobiol. 2016 May;92(3):428-35. doi: 10.1111/php.12581. Epub 2016 Mar 14.

Abstract

This study describes new recombinant water-soluble chlorophyll (Chl)-binding proteins (WSCP) from Lepidium virginicum (LvWSCP). This complex binds four Chls (i.e. two dimers of Chls) per protein tetramer. We show that absorption, emission, hole-burned (HB) spectra and the shape of the zero-phonon hole (ZPH) action spectrum are consistent with the presence of uncorrelated excitation energy transfer between two Chl dimers. Thus, there is no need to include slow protein relaxation within the lowest excited state (as suggested in a previous analysis of cauliflower WSCP [Schmitt, F.-J. et al. (2008) J. Phys. Chem. B, 112, 13951; Pieper, J. et al. (2011) J. Phys. Chem. B, 115, 4053]) in order to explain the large shift observed between the maxima of the ZPH action and emission spectra. Experimental evidence is provided which shows that electron exchange between lowest energy Chls and the protein may occur, i.e. electrons can be trapped at low temperature by nearby aromatic amino acids. The latter explains the shape of nonresonant HB spectra (i.e. the absence of antihole), demonstrating that the hole-burning process in LvWSCP is largely photochemical in nature, though a small contribution from nonphotochemical hole burning (in resonant holes) is also observed.

摘要

本研究描述了来自北美独行菜(LvWSCP)的新型重组水溶性叶绿素(Chl)结合蛋白。该复合物每个蛋白质四聚体结合四个叶绿素(即两个叶绿素二聚体)。我们表明,吸收光谱、发射光谱、空穴烧蚀(HB)光谱以及零声子空穴(ZPH)作用光谱的形状与两个叶绿素二聚体之间不相关的激发能量转移的存在一致。因此,无需像之前对花椰菜WSCP的分析中所建议的那样([施密特,F.-J.等人(2008年)《物理化学杂志B》,112,13951;皮珀,J.等人(2011年)《物理化学杂志B》,115,4053])在最低激发态中纳入缓慢的蛋白质弛豫,以解释在ZPH作用光谱和发射光谱的最大值之间观察到的大位移。提供了实验证据,表明最低能量的叶绿素与蛋白质之间可能发生电子交换,即电子在低温下可被附近的芳香族氨基酸捕获。后者解释了非共振HB光谱的形状(即无反空穴),表明LvWSCP中的空穴烧蚀过程在很大程度上本质上是光化学的,尽管也观察到非光化学空穴烧蚀(在共振空穴中)有小的贡献。

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