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Format for Printing5.A.3 The Prokaryotic Molybdopterin-containing Oxidoreductase (PMO) Family The membrane-bound nitrate reductase-A (NR-A) (NarGHI; α NarGHI contains Mo-molybdopterin guanine dinucleotide, FMN(H Like NR-A, formate dehydrogenase (FDH) is a three subunit enzyme (FdnGHI) homologous to nitrate reductase-A. It has an α The soluble α-subunits of NR-A and FDH are homologous to the α-subunits of other soluble molybdo-cofactor proteins such as DMSO reductase, TMAO reductase, biotin sulfoxide reductase and thiosulfate reductase. The soluble β-subunits of NR-A and FDH show some sequence similarity to subunit F of the tungstate-containing formyl methanofuran dehydrogenase of Methanobacterium thermoautotrophicum (TC #3.D.8.1.1). Additionally they are homologous to β-subunits of the oxidoreductases cited above plus selenate reductase, tetrathionate reductase, polysulfide reductase, hydrogenases, carbon monoxide reductase, ferridoxin, polyferridoxin, etc. The NarI (γ) subunit is more sequence divergent than the α or β subunits but is homologous to a subunit in the archaeal heterodisulfide reductase (TC #3.D.7). The FdnI (γ) subunit of FDH has 4 predicted TMSs in contrast to NarI which has 5. The NarJ protein (P11351, sometimes called the δ-subunit) is required for assembly of the NR-cytochrome b complex. The net overall reaction catalyzed by NR-A is probably: nitrate (NO The overall reaction catalyzed by formate dehydrogenase is probably: formate (HCO2-) (in) + quinone (out) + 2H+ (out) → CO2 (in) + quinol (out) + H+ (in). The net transmembrane electron transfer reactions for NR-A and FDH, and probably other homologous enzymes are: (a) 2e- (out) → 2e- (in) (NR-A) (b) 2e- (in) → 2e- (out) (FDH) Blasco, F., C. 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The organisation of proton motive and non-proton motive redox loops in prokaryotic respiratory systems. Biochim. Biophys. Acta. 1777: 1480-1490.18930017 Stewart, V., Y. Lu, and A.J. Darwin. (2002). Periplasmic nitrate reductase (NapABC enzyme) supports anaerobic respiration by Escherichia coli K-12. J. Bacteriol. 184: 1314-1323.11844760 Unden, G. and J. Bongaerts. (1997). Alternative respiratory pathways of Escherichia coli: energetics and transcriptional regulation in response to electron acceptors. Biochim. Biophys. Acta 1320: 217-234.9230919 Weiner, J.H., R.A. Rothery, D. Sambasivarao, and C.A. Trieber. (1992). Molecular analysis of dimethylsulfoxide reductase: a complex iron-sulfur molybdoenzyme of Escherichia coli. Biochim. Biophys. Acta 1102: 1-18. 1324728 | ||
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