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光合光捕获的调节涉及PsbS蛋白对类囊体腔内pH的感知。

Regulation of photosynthetic light harvesting involves intrathylakoid lumen pH sensing by the PsbS protein.

作者信息

Li Xiao-Ping, Gilmore Adam M, Caffarri Stefano, Bassi Roberto, Golan Talila, Kramer David, Niyogi Krishna K

机构信息

Department of Plant and Microbial Biology, University of California, Berkeley, California 94720-3102, USA.

出版信息

J Biol Chem. 2004 May 28;279(22):22866-74. doi: 10.1074/jbc.M402461200. Epub 2004 Mar 21.

DOI:10.1074/jbc.M402461200
PMID:15033974
Abstract

The biochemical, biophysical, and physiological properties of the PsbS protein were studied in relation to mutations of two symmetry-related, lumen-exposed glutamate residues, Glu-122 and Glu-226. These two glutamates are targets for protonation during lumen acidification in excess light. Mutation of PsbS did not affect xanthophyll cycle pigment conversion or pool size. Plants containing PsbS mutations of both glutamates did not have any rapidly inducible nonphotochemical quenching (qE) and had similar chlorophyll fluorescence lifetime components as npq4-1, a psbS deletion mutant. The double mutant also lacked a characteristic leaf absorbance change at 535 nm (DeltaA535), and PsbS from these plants did not bind dicyclohexylcarbodiimide (DCCD), a known inhibitor of qE. Mutation of only one of the glutamates had intermediate effects on qE, chlorophyll fluorescence lifetime component amplitudes, DCCD binding, and DeltaA535. Little if any differences were observed comparing the two single mutants, suggesting that the glutamates are chemically and functionally equivalent. Based on these results a bifacial model for the functional interaction of PsbS with photosystem II is proposed. Furthermore, based on the extent of qE inhibition in the mutants, photochemical and nonphotochemical quenching processes of photosystem II were associated with distinct chlorophyll fluorescence life-time distribution components.

摘要

研究了PsbS蛋白的生化、生物物理和生理特性与两个对称相关、位于类囊体腔面的谷氨酸残基(Glu-122和Glu-226)突变的关系。这两个谷氨酸是高光条件下类囊体腔酸化过程中质子化的靶点。PsbS的突变不影响叶黄素循环色素的转化或库大小。含有两个谷氨酸都发生突变的PsbS的植物没有任何快速诱导的非光化学猝灭(qE),并且其叶绿素荧光寿命成分与psbS缺失突变体npq4-1相似。双突变体在535nm处也没有特征性的叶片吸光度变化(ΔA535),并且这些植物中的PsbS不结合二环己基碳二亚胺(DCCD),一种已知的qE抑制剂。仅一个谷氨酸发生突变对qE、叶绿素荧光寿命成分幅度、DCCD结合和ΔA535有中间效应。比较两个单突变体时几乎没有观察到差异,这表明这两个谷氨酸在化学和功能上是等效的。基于这些结果,提出了PsbS与光系统II功能相互作用的双面模型。此外,根据突变体中qE抑制的程度,光系统II的光化学和非光化学猝灭过程与不同的叶绿素荧光寿命分布成分相关。

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