Affiliation:
1. Max Planck Institute for Terrestrial Microbiology, Marburg, Germany
2. State Key Laboratory of Microbial Technology, Shangdong University, Jinan, People's Republic of China
3. LanzaTech NZ, Ltd., Auckland, New Zealand
Abstract
ABSTRACT
Flavin-based electron bifurcation is a recently discovered mechanism of coupling endergonic to exergonic redox reactions in the cytoplasm of anaerobic bacteria and archaea. Among the five electron-bifurcating enzyme complexes characterized to date, one is a heteromeric ferredoxin- and NAD-dependent [FeFe]-hydrogenase. We report here a novel electron-bifurcating [FeFe]-hydrogenase that is NADP rather than NAD specific and forms a complex with a formate dehydrogenase. The complex was found in high concentrations (6% of the cytoplasmic proteins) in the acetogenic
Clostridium autoethanogenum
autotrophically grown on CO, which was fermented to acetate, ethanol, and 2,3-butanediol. The purified complex was composed of seven different subunits. As predicted from the sequence of the encoding clustered genes (
fdhA/hytA-E
) and from chemical analyses, the 78.8-kDa subunit (FdhA) is a selenocysteine- and tungsten-containing formate dehydrogenase, the 65.5-kDa subunit (HytB) is an iron-sulfur flavin mononucleotide protein harboring the NADP binding site, the 51.4-kDa subunit (HytA) is the [FeFe]-hydrogenase proper, and the 18.1-kDa (HytC), 28.6-kDa (HytD), 19.9-kDa (HytE1), and 20.1-kDa (HytE2) subunits are iron-sulfur proteins. The complex catalyzed both the reversible coupled reduction of ferredoxin and NADP
+
with H
2
or formate and the reversible formation of H
2
and CO
2
from formate. We propose the complex to have two functions
in vivo
, namely, to normally catalyze CO
2
reduction to formate with NADPH and reduced ferredoxin in the Wood-Ljungdahl pathway and to catalyze H
2
formation from NADPH and reduced ferredoxin when these redox mediators get too reduced during unbalanced growth of
C. autoethanogenum
on CO (
E
0′
= −520 mV).
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Cited by
194 articles.
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