Principles of Bioenergetics pp 275-286 | Cite as
\( \Updelta \bar{\mu }_{{{\text{Na}}^{ + } }} \) Generators
Chapter
First Online:
Abstract
The situations when Na+ operates as a primary coupling ion are described. Sodium potential generators, such as decarboxylases, NADH:quinone oxidoreductase, methyltransferase complex, and formylmethanofuran dehydrogenase, and also different sodium-translocating ATPases and pyrophosphatase are discussed.
Keywords
Prosthetic Group Methanogenic Archaea Quinone Oxidoreductase Yersinia Pestis Methyltransferase Complex
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.
References
- Barquera B, Zhou W, Morgan JE, Gennis RB (2002) Riboflavin is a component of the Na+-pumping NADH-quinone oxidoreductase from Vibrio cholerae. Proc Natl Acad Sci U S A 99:10322–10324ADSCrossRefGoogle Scholar
- Bogachev AV, Murtazina RA, Skulachev VP (1997) The Na+/e- stoichiometry of the Na+-motive NADH:quinone oxidoreductase in Vibrio alginolyticus. FEBS Lett 409:475–477CrossRefGoogle Scholar
- Bogachev AV, Bertsova YV, Ruuge EK, Wikström M, Verkhovsky MI (2002) Kinetics of the spectral changes during reduction of the Na+-motive NADH:quinone oxidoreductase from Vibrio harveyi. Biochim Biophys Acta 1556:113–120CrossRefGoogle Scholar
- Buckel W (2001) Sodium ion-translocating decarboxylases. Biochim Biophys Acta 1505:15–27CrossRefGoogle Scholar
- de Poorter LMI, Geerts WG, Theuvenet APR, Keltjens JT (2003) Bioenergetics of the formyl-methanofuran dehydrogenase and heterodisulfide reductase reactions in Methanothermobacter thermautotrophicus. Eur J Biochem 270:66–75CrossRefGoogle Scholar
- Dimroth P (1980) A new sodium-transport system energized by the decarboxylation of oxaloacetate. FEBS Lett 122:234–236CrossRefGoogle Scholar
- Dimroth P (1982) The role of biotin and sodium in the decarboxylation of oxaloacetate by the membrane-bound oxaloacetate decarboxylase from Klebsiella aerogenes. Eur J Biochem 121:435–441CrossRefGoogle Scholar
- Dimroth P, Jockel P, Schmid M (2001) Coupling mechanism of the oxaloacetate decarboxylase Na+ pump. Biochim Biophys Acta 1505:1–14CrossRefGoogle Scholar
- Gottschalk G, Thauer RK (2001) The Na+-translocating methyltransferase complex from methanogenic archaea. Biochim Biophys Acta 1505:28–36CrossRefGoogle Scholar
- Häse CC, Fedorova ND, Galperin MY, Dibrov PA (2001) Sodium ion cycle in bacterial pathogens: evidence from cross-genome comparisons. Microbiol Mol Biol Rev 65:353–370CrossRefGoogle Scholar
- Hayashi M, Unemoto T (1986) FAD and FMN flavoproteins participate in the sodium-transport respiratory chain NADH:quinone reductase of a marine bacterium, Vibrio alginolyticus. FEBS Lett 202:327–330CrossRefGoogle Scholar
- Hayashi M, Hirai K, Unemoto T (1995) Sequencing and the alignment of structural genes in the nqr operon encoding the Na+-translocating NADH-quinone reductase from Vibrio alginolyticus. FEBS Lett 363:75–77CrossRefGoogle Scholar
- Hayashi M, Nakayama Y, Unemoto T (2001) Recent progress in the Na+-translocating NADH-quinone reductase from the marine Vibrio alginolyticus. Biochim Biophys Acta 1505:37–44CrossRefGoogle Scholar
- Heefner DL, Harold FM (1982) ATP-driven sodium pump in Streptococcus faecalis. Proc Natl Acad Sci U S A 79:2798–2802ADSCrossRefGoogle Scholar
- Hochheimer A, Schmitz RA, Thauer RK, Hedderich R (1995) The tungsten formylmethanofuran dehydrogenase from Methanobacterium thermoautotrophicum contains sequence motifs characteristic for enzymes containing molybdopterin dinucleotide. Eur J Biochem 234:910–920CrossRefGoogle Scholar
- Horisberger JD (2004) Recent insights into the structure and mechanism of the sodium pump. Physiology 19:377–387 (Bethesda)CrossRefGoogle Scholar
- Kaesler B, Schönheit P (1989) The role of sodium ions in methanogenesis. Formaldehyde oxidation to CO2 and 2H2 in methanogenic bacteria is coupled with primary electrogenic Na+ translocation at a stoichiometry of 2–3 Na+/CO2. Eur J Biochem 184:223–232CrossRefGoogle Scholar
- Luoto HH, Belogurov GA, Baykov AA, Lahti R, Malinen AM (2011) Na+-translocating membrane pyrophosphatases are widespread in the microbial world and evolutionarily precede H+-translocating pyrophosphatases. J Biol Chem 286:21633–21642CrossRefGoogle Scholar
- Malinen AM, Belogurov GA, Baykov AA, Lahti R (2007) Na+-pyrophosphatase: a novel primary sodium pump. Biochemistry 46:8872–8878CrossRefGoogle Scholar
- Mulkidjanian AY, Galperin MY, Makarova KS, Wolf YI, Koonin EV (2008) Evolutionary primacy of sodium bioenergetics. Biol Direct 3:13CrossRefGoogle Scholar
- Murata T, Kawano M, Igarashi K, Yamato I, Kakinuma Y (2001) Catalytic properties of Na+-translocating V-ATPase in Enterococcus hirae. Biochim Biophys Acta 1505:75–81CrossRefGoogle Scholar
- Murata T, Yamato I, Kakinuma Y, Leslie AG, Walker JE (2005) Structure of the rotor of the V-type Na+-ATPase from Enterococcus hirae. Science 308:654–659ADSCrossRefGoogle Scholar
- Perski H-J, Moll J, Thauer RK (1981) Sodium dependence of growth and methane formation in Methanobacterium thermoautotrophicum. Arch Microbiol 130:319–321CrossRefGoogle Scholar
- Pfenninger-Li XD, Dimroth P (1995) The Na+-translocating NADH-ubiquinone oxidoreductase from the marine bacterium Vibrio alginolyticus contains FAD but not FMN. FEBS Lett 369:173–176CrossRefGoogle Scholar
- Proverbio F, Condrescu-Guidi M, Whittembury G (1975) Ouabain-insensitive Na+ stimulation of an Mg2+-dependent ATPase in kidney tissue. Biochim Biophys Acta 394:281–292CrossRefGoogle Scholar
- Rich PR, Meinier B, Ward B (1995) Predicted structure and possible ion-motive mechanism of the sodium-linked NADH-quinone oxidoreductase of Vibrio alginolyticus. FEBS Lett 375:5–10CrossRefGoogle Scholar
- Skou JC (1957) The influence of some cations on an adenosine triphosphatase from peripheral nerves. Biochim Biophys Acta 23:394–401CrossRefGoogle Scholar
- Tokuda H, Unemoto T (1982) Characterization of the respiration-dependent Na+ pump in the marine bacterium Vibrio alginolyticus. J Biol Chem 257:10007–10014Google Scholar
- Turk K, Puhar A, Neese F, Bill E, Fritz G, Steuber J (2004) NADH oxidation by the Na+-translocating NADH:quinone oxidoreductase from Vibrio cholerae: functional role of the NqrF subunit. J Biol Chem 279:21349–21355CrossRefGoogle Scholar
- Unemoto T, Hayashi M (1979) NADH:quinone oxidoreductase as a site of Na+-dependent activation in the respiratory chain of marine Vibrio alginolyticus. J Biochem 85:1461–1467Google Scholar
- Unemoto T, Hayashi M, Hayashi M (1977) Na+-dependent activation of NADH oxidase in membrane fractions from halophilic Vibrio alginolyticus and V. costicolus. J Biochem 82:1389–1395Google Scholar
- Verkhovsky MI, Bogachev AV (2010) Sodium-translocating NADH:quinone oxidoreductase as a redox-driven ion pump. Biochim Biophys Acta 1797:738–746CrossRefGoogle Scholar
- Zhou W, Bertsova YV, Feng B, Tsatsos P, Verkhovskaya ML, Gennis RB, Bogachev AV, Barquera B (1999) Sequencing and preliminary characterization of the Na+-translocating NADH:ubiquinone oxidoreductase from Vibrio harveyi. Biochemistry 38:16246–16252CrossRefGoogle Scholar
Copyright information
© Springer-Verlag Berlin Heidelberg 2013