Natural isoforms of the Photosystem II D1 subunit differ in photoassembly efficiency of the water-oxidizing complex

被引:0
作者
David J. Vinyard
Jennifer S. Sun
Javier Gimpel
Gennady M. Ananyev
Stephen P. Mayfield
G. Charles Dismukes
机构
[1] Rutgers,Waksman Institute of Microbiology
[2] The State University of New Jersey,Department of Chemistry and Chemical Biology
[3] Rutgers,San Diego Center for Algae Biotechnology, Division of Biological Sciences
[4] The State University of New Jersey,Department of Chemistry
[5] University of California,Department of Molecular, Cellular, and Development Biology
[6] Yale University,Centre for Biotechnology and Bioengineering
[7] Yale University,undefined
[8] Universidad de Chile,undefined
来源
Photosynthesis Research | 2016年 / 128卷
关键词
Photosystem II; Oxygen evolution; Water-oxidizing complex; Photo-assembly; Photosynthetic efficiency;
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摘要
Oxygenic photosynthesis efficiency at increasing solar flux is limited by light-induced damage (photoinhibition) of Photosystem II (PSII), primarily targeting the D1 reaction center subunit. Some cyanobacteria contain two natural isoforms of D1 that function better under low light (D1:1) or high light (D1:2). Herein, rates and yields of photoassembly of the Mn4CaO5 water-oxidizing complex (WOC) from the free inorganic cofactors (Mn2+, Ca2+, water, electron acceptor) and apo-WOC-PSII are shown to differ significantly: D1:1 apo-WOC-PSII exhibits a 2.3-fold faster rate-limiting step of photoassembly and up to seven-fold faster rate to the first light-stable Mn3+ intermediate, IM1*, but with a much higher rate of photoinhibition than D1:2. Conversely, D1:2 apo-WOC-PSII assembles slower but has up to seven-fold higher yield, achieved by a higher quantum yield of charge separation and slower photoinhibition rate. These results confirm and extend previous observations of the two holoenzymes: D1:2-PSII has a greater quantum yield of primary charge separation, faster [P680+QA−] charge recombination and less photoinhibition that results in a slower rate and higher yield of photoassembly of its apo-WOC-PSII complex. In contrast, D1:1-PSII has a lower quantum yield of primary charge separation, a slower [P680+QA−] charge recombination rate, and faster photoinhibition that together result in higher rate but lower yield of photoassembly at higher light intensities. Cyanobacterial PSII reaction centers that contain the high- and low-light D1 isoforms can tailor performance to optimize photosynthesis at varying light conditions, with similar consequences on their photoassembly kinetics and yield. These different efficiencies of photoassembly versus photoinhibition impose differential costs for biosynthesis as a function of light intensity.
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页码:141 / 150
页数:9
相关论文
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