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Structure-based electron-confurcation mechanism of the Ldh-EtfAB complex

Lactate oxidation with NAD(+) as electron acceptor is a highly endergonic reaction. Some anaerobic bacteria overcome the energetic hurdle by flavin-based electron bifurcation/confurcation (FBEB/FBEC) using a lactate dehydrogenase (Ldh) in concert with the electron-transferring proteins EtfA and EtfB...

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Autores principales: Kayastha, Kanwal, Katsyv, Alexander, Himmrich, Christina, Welsch, Sonja, Schuller, Jan M, Ermler, Ulrich, Müller, Volker
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9232219/
https://www.ncbi.nlm.nih.gov/pubmed/35748623
http://dx.doi.org/10.7554/eLife.77095
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author Kayastha, Kanwal
Katsyv, Alexander
Himmrich, Christina
Welsch, Sonja
Schuller, Jan M
Ermler, Ulrich
Müller, Volker
author_facet Kayastha, Kanwal
Katsyv, Alexander
Himmrich, Christina
Welsch, Sonja
Schuller, Jan M
Ermler, Ulrich
Müller, Volker
author_sort Kayastha, Kanwal
collection PubMed
description Lactate oxidation with NAD(+) as electron acceptor is a highly endergonic reaction. Some anaerobic bacteria overcome the energetic hurdle by flavin-based electron bifurcation/confurcation (FBEB/FBEC) using a lactate dehydrogenase (Ldh) in concert with the electron-transferring proteins EtfA and EtfB. The electron cryo-microscopically characterized (Ldh-EtfAB)(2) complex of Acetobacterium woodii at 2.43 Å resolution consists of a mobile EtfAB shuttle domain located between the rigid central Ldh and the peripheral EtfAB base units. The FADs of Ldh and the EtfAB shuttle domain contact each other thereby forming the D (dehydrogenation-connected) state. The intermediary Glu37 and Glu139 may harmonize the redox potentials between the FADs and the pyruvate/lactate pair crucial for FBEC. By integrating Alphafold2 calculations a plausible novel B (bifurcation-connected) state was obtained allowing electron transfer between the EtfAB base and shuttle FADs. Kinetic analysis of enzyme variants suggests a correlation between NAD(+) binding site and D-to-B-state transition implicating a 75° rotation of the EtfAB shuttle domain. The FBEC inactivity when truncating the ferredoxin domain of EtfA substantiates its role as redox relay. Lactate oxidation in Ldh is assisted by the catalytic base His423 and a metal center. On this basis, a comprehensive catalytic mechanism of the FBEC process was proposed.
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spelling pubmed-92322192022-06-25 Structure-based electron-confurcation mechanism of the Ldh-EtfAB complex Kayastha, Kanwal Katsyv, Alexander Himmrich, Christina Welsch, Sonja Schuller, Jan M Ermler, Ulrich Müller, Volker eLife Biochemistry and Chemical Biology Lactate oxidation with NAD(+) as electron acceptor is a highly endergonic reaction. Some anaerobic bacteria overcome the energetic hurdle by flavin-based electron bifurcation/confurcation (FBEB/FBEC) using a lactate dehydrogenase (Ldh) in concert with the electron-transferring proteins EtfA and EtfB. The electron cryo-microscopically characterized (Ldh-EtfAB)(2) complex of Acetobacterium woodii at 2.43 Å resolution consists of a mobile EtfAB shuttle domain located between the rigid central Ldh and the peripheral EtfAB base units. The FADs of Ldh and the EtfAB shuttle domain contact each other thereby forming the D (dehydrogenation-connected) state. The intermediary Glu37 and Glu139 may harmonize the redox potentials between the FADs and the pyruvate/lactate pair crucial for FBEC. By integrating Alphafold2 calculations a plausible novel B (bifurcation-connected) state was obtained allowing electron transfer between the EtfAB base and shuttle FADs. Kinetic analysis of enzyme variants suggests a correlation between NAD(+) binding site and D-to-B-state transition implicating a 75° rotation of the EtfAB shuttle domain. The FBEC inactivity when truncating the ferredoxin domain of EtfA substantiates its role as redox relay. Lactate oxidation in Ldh is assisted by the catalytic base His423 and a metal center. On this basis, a comprehensive catalytic mechanism of the FBEC process was proposed. eLife Sciences Publications, Ltd 2022-06-24 /pmc/articles/PMC9232219/ /pubmed/35748623 http://dx.doi.org/10.7554/eLife.77095 Text en © 2022, Kayastha, Katsyv et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Biochemistry and Chemical Biology
Kayastha, Kanwal
Katsyv, Alexander
Himmrich, Christina
Welsch, Sonja
Schuller, Jan M
Ermler, Ulrich
Müller, Volker
Structure-based electron-confurcation mechanism of the Ldh-EtfAB complex
title Structure-based electron-confurcation mechanism of the Ldh-EtfAB complex
title_full Structure-based electron-confurcation mechanism of the Ldh-EtfAB complex
title_fullStr Structure-based electron-confurcation mechanism of the Ldh-EtfAB complex
title_full_unstemmed Structure-based electron-confurcation mechanism of the Ldh-EtfAB complex
title_short Structure-based electron-confurcation mechanism of the Ldh-EtfAB complex
title_sort structure-based electron-confurcation mechanism of the ldh-etfab complex
topic Biochemistry and Chemical Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9232219/
https://www.ncbi.nlm.nih.gov/pubmed/35748623
http://dx.doi.org/10.7554/eLife.77095
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