Electron Bifurcation: A Long-Hidden Energy-Coupling Mechanism

被引:106
作者
Mueller, Volker [1 ]
Chowdhury, Nilanjan Pal [1 ]
Basen, Mirko [1 ]
机构
[1] Johann Wolfgang Goethe Univ Frankfurt Main, Inst Mol Biosci, Dept Mol Microbiol & Bioenerget, D-60438 Frankfurt, Germany
来源
ANNUAL REVIEW OF MICROBIOLOGY, VOL 72 | 2018年 / 72卷
关键词
energy conservation; anaerobic metabolism; acetogens; methanogens; fermentation; flavin-based electron bifurcation; bioenergetics; FERREDOXIN REDUCTASE SYSTEM; WOOD-LJUNGDAHL PATHWAY; COENZYME-M REDUCTASE; ACETOBACTERIUM-WOODII; METHANOBACTERIUM-THERMOAUTOTROPHICUM; CLOSTRIDIUM-AUTOETHANOGENUM; HETERODISULFIDE REDUCTASE; METHANOGENIC ARCHAEA; CAFFEATE REDUCTION; METHYLENETETRAHYDROFOLATE REDUCTASE;
D O I
10.1146/annurev-micro-090816-093440
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A decade ago, a novel mechanism to drive thermodynamically unfavorable redox reactions was discovered that is used in prokaryotes to drive endergonic electron transfer reactions by a direct coupling to an exergonic redox reaction in one soluble enzyme complex. This process is referred to as flavin-based electron bifurcation, or FBEB. An important function of FBEB is that it allows the generation of reduced low-potential ferredoxin (Fd(red)) from comparably high-potential electron donors such as NADH or molecular hydrogen (H-2). Fdred is then the electron donor for anaerobic respiratory chains leading to the synthesis of ATP. In many metabolic scenarios, Fd is reduced by metabolic oxidoreductases and Fdred then drives endergonic metabolic reactions such as H-2 production by the reverse, electron confurcation. FBEB is energetically more economical than ATP hydrolysis or reverse electron transport as a driving force for endergonic redox reactions; thus, it does "save" cellular ATP. It is essential for autotrophic growth at the origin of life and also allows for heterotrophic growth on certain low-energy substrates.
引用
收藏
页码:331 / 353
页数:23
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