Is bicarbonate directly used as substrate to participate in photosynthetic oxygen evolution

被引:13
作者
Wu, Yanyou [1 ]
机构
[1] Chinese Acad Sci, Inst Geochem, State Key Lab Environm Geochem, Guiyang 550081, Peoples R China
基金
中国国家自然科学基金;
关键词
Bicarbonate photolysis; Carbonic anhydrase; Photosystem II; Photosynthesis; Water photolysis; CARBONIC-ANHYDRASE ACTIVITY; WATER-OXIDIZING COMPLEX; REDUCTION POTENTIAL DEPENDENCE; PHOTOSYSTEM-II; DONOR SIDE; FLUORESCENCE TRANSIENTS; ELECTRON-TRANSPORT; CRYSTAL-STRUCTURE; PEA THYLAKOIDS; HILL REACTION;
D O I
10.1007/s11631-021-00484-0
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
If the photosynthetic organisms assimilated only CO2 in the Archean atmosphere, hydroxide ion in the Archean seawater would not increase. If plants would not consume bicarbonate as a direct substrate during photosynthesis, it is difficult to explain the evolution of Earth's environment. To date, it is generally accepted that photosynthetic O-2 evolution of plants come from water photolysis. However, it should be debated by evaluating the effect of bicarbonate in photosynthetic O-2 evolution, analyzing the role of carbonic anhydrase (CA) in photosynthetic O-2 evolution, and the relationship between thylakoid CA and photosynthetic O-2 evolution. In the paper, I propose that bicarbonate is directly used as substrate to participate in photosynthetic O-2 evolution. The rationality of bicarbonate photolysis of plants is discussed from the thermodynamics and evolution of Earth's environment. The isotopic evidence that bicarbonate is not the direct substrate of photosynthetic O-2 release is reexamined, and the new explanation of bicarbonate photolysis in photosynthetic O-2 evolution is proposed.
引用
收藏
页码:650 / 658
页数:9
相关论文
共 50 条
[41]   Theoretical Study on the Mechanism of Photosynthetic Oxygen Evolution by ABEEM/MM/MD and BS-DFT [J].
Guo Yu ;
Yao Yuan ;
Li Hui ;
He Lanlan ;
Zhu Zunwei ;
Yang Zhongzhi ;
Gong Lidong ;
Liu Cui ;
Zhao Dongxia .
ACTA CHIMICA SINICA, 2017, 75 (09) :903-913
[42]   A hydrogen-atom abstraction model for the function of Y-Z in photosynthetic oxygen evolution [J].
Hoganson, CW ;
LydakisSimantiris, N ;
Tang, XS ;
Tommos, C ;
Warncke, K ;
Babcock, GT ;
Diner, BA ;
McCracken, J ;
Styring, S .
PHOTOSYNTHESIS RESEARCH, 1995, 46 (1-2) :177-184
[43]   Distribution of the extrinsic proteins as a potential marker for the evolution of photosynthetic oxygen-evolving photosystem II [J].
Enami, I ;
Suzuki, T ;
Tada, O ;
Nakada, Y ;
Nakamura, K ;
Tohri, A ;
Ohta, H ;
Inoue, I ;
Shen, JR .
FEBS JOURNAL, 2005, 272 (19) :5020-5030
[44]   ANALYSIS OF OXYGEN EVOLUTION DURING PHOTOSYNTHETIC INDUCTION AND IN MULTIPLE-TURNOVER FLASHES IN SUNFLOWER LEAVES [J].
LAISK, A ;
KIIRATS, O ;
OJA, V ;
GERST, U ;
WEIS, E ;
HEBER, U .
PLANTA, 1992, 186 (03) :434-441
[45]   Tuning photosynthetic oxygen for hydrogen evolution in synergistically integrated, sulfur deprived consortia of Coccomyxa chodatii and Rhodobium gokarnense at dim and high light [J].
Danial, Amal W. ;
Abdel-Basset, R. ;
Abdel-Kader, Huwida A. A. .
PHOTOSYNTHESIS RESEARCH, 2023, 155 (02) :203-218
[46]   Converting the 4-Flash Photosynthetic O2 Evolution Cycle to a 2-Flash Catalytic Cycle with a Simple Cocatalyst: Counting Electrons and Holes Directly and Transparently [J].
Gates, Colin ;
Ananyev, Gennady ;
Roy-Chowdhury, Shatabdi ;
Fromme, Petra ;
Dismukes, G. Charles .
ACS CATALYSIS, 2024, 14 (20) :15073-15087
[47]   Profiles of photosynthetic oxygen-evolution within leaves of Spinacia oleracea [J].
Han, T ;
Vogelmann, T ;
Nishio, J .
NEW PHYTOLOGIST, 1999, 143 (01) :83-92
[48]   X-ray spectroscopy-based structure of the Mn cluster and mechanism of photosynthetic oxygen evolution [J].
Robblee, JH ;
Cinco, RM ;
Yachandra, VK .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2001, 1503 (1-2) :7-23
[49]   Thermodynamically accurate modeling of the catalytic cycle of photosynthetic oxygen evolution: A mathematical solution to asymmetric Markov chains [J].
Vinyard, David J. ;
Zachary, Chase E. ;
Ananyev, Gennady ;
Dismukes, G. Charles .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2013, 1827 (07) :861-868
[50]   PHOTOSYSTEM-II 3-D STRUCTURE AND THE ROLE OF THE EXTRINSIC SUBUNITS IN PHOTOSYNTHETIC OXYGEN EVOLUTION [J].
FORD, RC ;
ROSENBERG, MF ;
SHEPHERD, FH ;
MCPHIE, P ;
HOLZENBURG, A .
MICRON, 1995, 26 (02) :133-140