The Photosystem II D1-K238E mutation enhances electrical current production using cyanobacterial thylakoid membranes in a bio-photoelectrochemical cell

被引:0
作者
Shirley Larom
Dan Kallmann
Gadiel Saper
Roy Pinhassi
Avner Rothschild
Hen Dotan
Guy Ankonina
Gadi Schuster
Noam Adir
机构
[1] Technion-Israel Institute of Technology,Faculty of Biology
[2] Technion-Israel Institute of Technology,Grand Technion Energy Program
[3] Technion-Israel Institute of Technology,Faculty of Material Science and Engineering
[4] Technion-Israel Institute of Technology,Photovoltaics Lab
[5] Technion-Israel Institute of Technology,Schulich Faculty of Chemistry
来源
Photosynthesis Research | 2015年 / 126卷
关键词
Photosynthesis; Cyanobacteria; Solar energy conversion; Cytochrome c; Electrochemistry;
D O I
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学科分类号
摘要
The conversion of solar energy (SEC) to storable chemical energy by photosynthesis has been performed by photosynthetic organisms, including oxygenic cyanobacteria for over 3 billion years. We have previously shown that crude thylakoid membranes from the cyanobacterium Synechocytis sp. PCC 6803 can reduce the electron transfer (ET) protein cytochrome c even in the presence of the PSII inhibitor DCMU. Mutation of lysine 238 of the Photosystem II D1 protein to glutamic acid increased the cytochrome reduction rates, indicating the possible position of this unknown ET pathway. In this contribution, we show that D1-K238E is rather unique, as other mutations to K238, or to other residues in the same vicinity, are not as successful in cytochrome c reduction. This observation indicates the sensitivity of ET reactions to minor changes. As the next step in obtaining useful SEC from biological material, we describe the use of crude Synechocystis membranes in a bio-photovoltaic cell containing an N-acetyl cysteine-modified gold electrode. We show the production of significant current for prolonged time durations, in the presence of DCMU. Surprisingly, the presence of cytochrome c was not found to be necessary for ET to the bio-voltaic cell.
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页码:161 / 169
页数:8
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共 168 条
[1]  
Adir N(1996)Crystallization and characterization of the photosynthetic reaction center-cytochrome c2 complex f Biochemistry 35 2535-2547
[2]  
Axelrod HL(2014)Solid-state electron transport via cytochrome c depends on electronic coupling to electrodes and across the protein Proc Natl Acad Sci USA 111 5556-5561
[3]  
Beroza P(1977)Spatial relationship of photosystem I, photosystem II, and the light-harvesting complex in chloroplast membranes J Cell Biol 73 400-418
[4]  
Isaacson RA(1949)Copper enzymes in isolated chloroplasts. Polyphenoloxidase in Beta vulgaris Plant Physiol 24 1-15
[5]  
Rongey SH(2002)X-ray structure determination of the cytochrome c2: reaction center electron transfer complex from J Mol Biol 319 501-515
[6]  
Okamura MY(2012)Photosystem II: the water-splitting enzyme of photosynthesis Cold Spring Harb Symp Quant Biol 77 295-307
[7]  
Feher G(1987)Strategies for the development of amperometric enzyme electrodes Biosensors 3 359-379
[8]  
Amdursky N(2011)Dynamics in electron transfer protein complexes FEBS J 278 1391-1400
[9]  
Ferber D(1998)The origin and evolution of oxygenic photosynthesis Trends Biochem Sci 23 94-97
[10]  
Bortolotti CA(2008)Water oxidation chemistry of photosystem II Philos Trans R Soc Lond Ser B 363 1211-1218