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Plasticity in salt bridge allows fusion-competent ubiquitylation of mitofusins and Cdc48 recognition

Mitofusins are dynamin-related GTPases that drive mitochondrial fusion by sequential events of oligomerization and GTP hydrolysis, followed by their ubiquitylation. Here, we show that fusion requires a trilateral salt bridge at a hinge point of the yeast mitofusin Fzo1, alternatingly forming before...

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Autores principales: Anton, Vincent, Buntenbroich, Ira, Schuster, Ramona, Babatz, Felix, Simões, Tânia, Altin, Selver, Calabrese, Gaetano, Riemer, Jan, Schauss, Astrid, Escobar-Henriques, Mafalda
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Life Science Alliance LLC 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6861704/
https://www.ncbi.nlm.nih.gov/pubmed/31740565
http://dx.doi.org/10.26508/lsa.201900491
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author Anton, Vincent
Buntenbroich, Ira
Schuster, Ramona
Babatz, Felix
Simões, Tânia
Altin, Selver
Calabrese, Gaetano
Riemer, Jan
Schauss, Astrid
Escobar-Henriques, Mafalda
author_facet Anton, Vincent
Buntenbroich, Ira
Schuster, Ramona
Babatz, Felix
Simões, Tânia
Altin, Selver
Calabrese, Gaetano
Riemer, Jan
Schauss, Astrid
Escobar-Henriques, Mafalda
author_sort Anton, Vincent
collection PubMed
description Mitofusins are dynamin-related GTPases that drive mitochondrial fusion by sequential events of oligomerization and GTP hydrolysis, followed by their ubiquitylation. Here, we show that fusion requires a trilateral salt bridge at a hinge point of the yeast mitofusin Fzo1, alternatingly forming before and after GTP hydrolysis. Mutations causative of Charcot–Marie–Tooth disease massively map to this hinge point site, underlining the disease relevance of the trilateral salt bridge. A triple charge swap rescues the activity of Fzo1, emphasizing the close coordination of the hinge residues with GTP hydrolysis. Subsequently, ubiquitylation of Fzo1 allows the AAA-ATPase ubiquitin-chaperone Cdc48 to resolve Fzo1 clusters, releasing the dynamin for the next fusion round. Furthermore, cross-complementation within the oligomer unexpectedly revealed ubiquitylated but fusion-incompetent Fzo1 intermediates. However, Cdc48 did not affect the ubiquitylated but fusion-incompetent variants, indicating that Fzo1 ubiquitylation is only controlled after membrane merging. Together, we present an integrated model on how mitochondrial outer membranes fuse, a critical process for their respiratory function but also putatively relevant for therapeutic interventions.
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spelling pubmed-68617042019-11-20 Plasticity in salt bridge allows fusion-competent ubiquitylation of mitofusins and Cdc48 recognition Anton, Vincent Buntenbroich, Ira Schuster, Ramona Babatz, Felix Simões, Tânia Altin, Selver Calabrese, Gaetano Riemer, Jan Schauss, Astrid Escobar-Henriques, Mafalda Life Sci Alliance Research Articles Mitofusins are dynamin-related GTPases that drive mitochondrial fusion by sequential events of oligomerization and GTP hydrolysis, followed by their ubiquitylation. Here, we show that fusion requires a trilateral salt bridge at a hinge point of the yeast mitofusin Fzo1, alternatingly forming before and after GTP hydrolysis. Mutations causative of Charcot–Marie–Tooth disease massively map to this hinge point site, underlining the disease relevance of the trilateral salt bridge. A triple charge swap rescues the activity of Fzo1, emphasizing the close coordination of the hinge residues with GTP hydrolysis. Subsequently, ubiquitylation of Fzo1 allows the AAA-ATPase ubiquitin-chaperone Cdc48 to resolve Fzo1 clusters, releasing the dynamin for the next fusion round. Furthermore, cross-complementation within the oligomer unexpectedly revealed ubiquitylated but fusion-incompetent Fzo1 intermediates. However, Cdc48 did not affect the ubiquitylated but fusion-incompetent variants, indicating that Fzo1 ubiquitylation is only controlled after membrane merging. Together, we present an integrated model on how mitochondrial outer membranes fuse, a critical process for their respiratory function but also putatively relevant for therapeutic interventions. Life Science Alliance LLC 2019-11-18 /pmc/articles/PMC6861704/ /pubmed/31740565 http://dx.doi.org/10.26508/lsa.201900491 Text en © 2019 Anton et al. https://creativecommons.org/licenses/by/4.0/This article is available under a Creative Commons License (Attribution 4.0 International, as described at https://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Articles
Anton, Vincent
Buntenbroich, Ira
Schuster, Ramona
Babatz, Felix
Simões, Tânia
Altin, Selver
Calabrese, Gaetano
Riemer, Jan
Schauss, Astrid
Escobar-Henriques, Mafalda
Plasticity in salt bridge allows fusion-competent ubiquitylation of mitofusins and Cdc48 recognition
title Plasticity in salt bridge allows fusion-competent ubiquitylation of mitofusins and Cdc48 recognition
title_full Plasticity in salt bridge allows fusion-competent ubiquitylation of mitofusins and Cdc48 recognition
title_fullStr Plasticity in salt bridge allows fusion-competent ubiquitylation of mitofusins and Cdc48 recognition
title_full_unstemmed Plasticity in salt bridge allows fusion-competent ubiquitylation of mitofusins and Cdc48 recognition
title_short Plasticity in salt bridge allows fusion-competent ubiquitylation of mitofusins and Cdc48 recognition
title_sort plasticity in salt bridge allows fusion-competent ubiquitylation of mitofusins and cdc48 recognition
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6861704/
https://www.ncbi.nlm.nih.gov/pubmed/31740565
http://dx.doi.org/10.26508/lsa.201900491
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