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  Studies on the Mechanism of Electron Bifurcation Catalyzed by Electron Transferring Flavoprotein (Etf) and Butyryl-CoA Dehydrogenase (Bcd) of Acidaminococcus fermentans

Chowdhury, N. P., Mowafy, A. M., Demmer, J. K., Upadhyay, V., Koelzer, S., Jayamani, E., et al. (2014). Studies on the Mechanism of Electron Bifurcation Catalyzed by Electron Transferring Flavoprotein (Etf) and Butyryl-CoA Dehydrogenase (Bcd) of Acidaminococcus fermentans. The Journal of Biological Chemistry, 289(8), 5145-5157. doi:10.1074/jbc.M113.521013.

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Chowdhury, Nilanjan Pal1, 2, Autor
Mowafy, Amr M.1, 2, Autor
Demmer, Julius K.2, 3, Autor           
Upadhyay, Vikrant3, Autor           
Koelzer, Sebastian1, Autor
Jayamani, Elamparithi1, 2, Autor
Kahnt, Joerg2, Autor
Hornung, Marco1, 2, Autor
Demmer, Ulrike3, Autor                 
Ermler, Ulrich3, Autor                 
Buckel, Wolfgang1, 2, Autor
Affiliations:
1Laboratorium für Mikrobiologie, Fachbereich Biologie and SYNMIKRO, Philipps-Universität, 35032 Marburg, Germany, ou_persistent22              
2Max-Planck-Institut für terrestrische Mikrobiologie, Karl-von-Frisch-Str. 10, 35043 Marburg, Max Planck Society, Germany, ou_persistent22              
3Department of Molecular Membrane Biology, Max Planck Institute of Biophysics, Max Planck Society, ou_2068290              

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 Zusammenfassung: Electron bifurcation is a fundamental strategy of energy coupling originally discovered in the Q-cycle of many organisms. Recently a flavin-based electron bifurcation has been detected in anaerobes, first in clostridia and later in acetogens and methanogens. It enables anaerobic bacteria and archaea to reduce the low-potential [4Fe-4S] clusters of ferredoxin, which increases the efficiency of the substrate level and electron transport phosphorylations. Here we characterize the bifurcating electron transferring flavoprotein (EtfAf) and butyryl-CoA dehydrogenase (BcdAf) of Acidaminococcus fermentans, which couple the exergonic reduction of crotonyl-CoA to butyryl-CoA to the endergonic reduction of ferredoxin both with NADH. EtfAf contains one FAD (α-FAD) in subunit α and a second FAD (β-FAD) in subunit β. The distance between the two isoalloxazine rings is 18 Å. The EtfAf-NAD+ complex structure revealed β-FAD as acceptor of the hydride of NADH. The formed β-FADH- is considered as the bifurcating electron donor. As a result of a domain movement, α-FAD is able to approach β-FADH- by about 4 Å and to take up one electron yielding a stable anionic semiquinone, α-FAD-, which donates this electron further to Dh-FAD of BcdAf after a second domain movement. The remaining nonstabilized neutral semiquinone, β-FADHˑ, immediately reduces ferredoxin. Repetition of this process affords a second reduced ferredoxin and Dh-FADH- that converts crotonyl-CoA to butyryl-CoA.

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Sprache(n): eng - English
 Datum: 201420142014-02-21
 Publikationsstatus: Erschienen
 Seiten: 14
 Ort, Verlag, Ausgabe: -
 Inhaltsverzeichnis: -
 Art der Begutachtung: Expertenbegutachtung
 Identifikatoren: DOI: 10.1074/jbc.M113.521013
 Art des Abschluß: -

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Titel: The Journal of Biological Chemistry
  Andere : JBC
Genre der Quelle: Zeitschrift
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Ort, Verlag, Ausgabe: Baltimore, etc. : American Society for Biochemistry and Molecular Biology [etc.]
Seiten: 14 Band / Heft: 289 (8) Artikelnummer: - Start- / Endseite: 5145 - 5157 Identifikator: ISSN: 0021-9258
CoNE: https://pure.mpg.de/cone/journals/resource/954925410826_1