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Resting mitochondrial complex I from Drosophila melanogaster adopts a helix-locked state

Respiratory complex I is a proton-pumping oxidoreductase key to bioenergetic metabolism. Biochemical studies have found a divide in the behavior of complex I in metazoans that aligns with the evolutionary split between Protostomia and Deuterostomia. Complex I from Deuterostomia including mammals can...

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Autores principales: Padavannil, Abhilash, Murari, Anjaneyulu, Rhooms, Shauna-Kay, Owusu-Ansah, Edward, Letts, James A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10036122/
https://www.ncbi.nlm.nih.gov/pubmed/36952377
http://dx.doi.org/10.7554/eLife.84415
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author Padavannil, Abhilash
Murari, Anjaneyulu
Rhooms, Shauna-Kay
Owusu-Ansah, Edward
Letts, James A
author_facet Padavannil, Abhilash
Murari, Anjaneyulu
Rhooms, Shauna-Kay
Owusu-Ansah, Edward
Letts, James A
author_sort Padavannil, Abhilash
collection PubMed
description Respiratory complex I is a proton-pumping oxidoreductase key to bioenergetic metabolism. Biochemical studies have found a divide in the behavior of complex I in metazoans that aligns with the evolutionary split between Protostomia and Deuterostomia. Complex I from Deuterostomia including mammals can adopt a biochemically defined off-pathway ‘deactive’ state, whereas complex I from Protostomia cannot. The presence of off-pathway states complicates the interpretation of structural results and has led to considerable mechanistic debate. Here, we report the structure of mitochondrial complex I from the thoracic muscles of the model protostome Drosophila melanogaster. We show that although D. melanogaster complex I (Dm-CI) does not have a NEM-sensitive deactive state, it does show slow activation kinetics indicative of an off-pathway resting state. The resting-state structure of Dm-CI from the thoracic muscle reveals multiple conformations. We identify a helix-locked state in which an N-terminal α-helix on the NDUFS4 subunit wedges between the peripheral and membrane arms. Comparison of the Dm-CI structure and conformational states to those observed in bacteria, yeast, and mammals provides insight into the roles of subunits across organisms, explains why the Dm-CI off-pathway resting state is NEM insensitive, and raises questions regarding current mechanistic models of complex I turnover.
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spelling pubmed-100361222023-03-24 Resting mitochondrial complex I from Drosophila melanogaster adopts a helix-locked state Padavannil, Abhilash Murari, Anjaneyulu Rhooms, Shauna-Kay Owusu-Ansah, Edward Letts, James A eLife Structural Biology and Molecular Biophysics Respiratory complex I is a proton-pumping oxidoreductase key to bioenergetic metabolism. Biochemical studies have found a divide in the behavior of complex I in metazoans that aligns with the evolutionary split between Protostomia and Deuterostomia. Complex I from Deuterostomia including mammals can adopt a biochemically defined off-pathway ‘deactive’ state, whereas complex I from Protostomia cannot. The presence of off-pathway states complicates the interpretation of structural results and has led to considerable mechanistic debate. Here, we report the structure of mitochondrial complex I from the thoracic muscles of the model protostome Drosophila melanogaster. We show that although D. melanogaster complex I (Dm-CI) does not have a NEM-sensitive deactive state, it does show slow activation kinetics indicative of an off-pathway resting state. The resting-state structure of Dm-CI from the thoracic muscle reveals multiple conformations. We identify a helix-locked state in which an N-terminal α-helix on the NDUFS4 subunit wedges between the peripheral and membrane arms. Comparison of the Dm-CI structure and conformational states to those observed in bacteria, yeast, and mammals provides insight into the roles of subunits across organisms, explains why the Dm-CI off-pathway resting state is NEM insensitive, and raises questions regarding current mechanistic models of complex I turnover. eLife Sciences Publications, Ltd 2023-03-23 /pmc/articles/PMC10036122/ /pubmed/36952377 http://dx.doi.org/10.7554/eLife.84415 Text en © 2023, Padavannil 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 Structural Biology and Molecular Biophysics
Padavannil, Abhilash
Murari, Anjaneyulu
Rhooms, Shauna-Kay
Owusu-Ansah, Edward
Letts, James A
Resting mitochondrial complex I from Drosophila melanogaster adopts a helix-locked state
title Resting mitochondrial complex I from Drosophila melanogaster adopts a helix-locked state
title_full Resting mitochondrial complex I from Drosophila melanogaster adopts a helix-locked state
title_fullStr Resting mitochondrial complex I from Drosophila melanogaster adopts a helix-locked state
title_full_unstemmed Resting mitochondrial complex I from Drosophila melanogaster adopts a helix-locked state
title_short Resting mitochondrial complex I from Drosophila melanogaster adopts a helix-locked state
title_sort resting mitochondrial complex i from drosophila melanogaster adopts a helix-locked state
topic Structural Biology and Molecular Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10036122/
https://www.ncbi.nlm.nih.gov/pubmed/36952377
http://dx.doi.org/10.7554/eLife.84415
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