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Quantification and demonstration of the collective constriction-by-ratchet mechanism in the dynamin molecular motor

Dynamin oligomerizes into helical filaments on tubular membrane templates and, through constriction, cleaves them in a GTPase-driven way. Structural observations of GTP-dependent cross-bridges between neighboring filament turns have led to the suggestion that dynamin operates as a molecular ratchet...

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Autores principales: Ganichkin, Oleg M., Vancraenenbroeck, Renee, Rosenblum, Gabriel, Hofmann, Hagen, Mikhailov, Alexander S., Daumke, Oliver, Noel, Jeffrey K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8285958/
https://www.ncbi.nlm.nih.gov/pubmed/34244431
http://dx.doi.org/10.1073/pnas.2101144118
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author Ganichkin, Oleg M.
Vancraenenbroeck, Renee
Rosenblum, Gabriel
Hofmann, Hagen
Mikhailov, Alexander S.
Daumke, Oliver
Noel, Jeffrey K.
author_facet Ganichkin, Oleg M.
Vancraenenbroeck, Renee
Rosenblum, Gabriel
Hofmann, Hagen
Mikhailov, Alexander S.
Daumke, Oliver
Noel, Jeffrey K.
author_sort Ganichkin, Oleg M.
collection PubMed
description Dynamin oligomerizes into helical filaments on tubular membrane templates and, through constriction, cleaves them in a GTPase-driven way. Structural observations of GTP-dependent cross-bridges between neighboring filament turns have led to the suggestion that dynamin operates as a molecular ratchet motor. However, the proof of such mechanism remains absent. Particularly, it is not known whether a powerful enough stroke is produced and how the motor modules would cooperate in the constriction process. Here, we characterized the dynamin motor modules by single-molecule Förster resonance energy transfer (smFRET) and found strong nucleotide-dependent conformational preferences. Integrating smFRET with molecular dynamics simulations allowed us to estimate the forces generated in a power stroke. Subsequently, the quantitative force data and the measured kinetics of the GTPase cycle were incorporated into a model including both a dynamin filament, with explicit motor cross-bridges, and a realistic deformable membrane template. In our simulations, collective constriction of the membrane by dynamin motor modules, based on the ratchet mechanism, is directly reproduced and analyzed. Functional parallels between the dynamin system and actomyosin in the muscle are seen. Through concerted action of the motors, tight membrane constriction to the hemifission radius can be reached. Our experimental and computational study provides an example of how collective motor action in megadalton molecular assemblies can be approached and explicitly resolved.
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spelling pubmed-82859582021-07-26 Quantification and demonstration of the collective constriction-by-ratchet mechanism in the dynamin molecular motor Ganichkin, Oleg M. Vancraenenbroeck, Renee Rosenblum, Gabriel Hofmann, Hagen Mikhailov, Alexander S. Daumke, Oliver Noel, Jeffrey K. Proc Natl Acad Sci U S A Physical Sciences Dynamin oligomerizes into helical filaments on tubular membrane templates and, through constriction, cleaves them in a GTPase-driven way. Structural observations of GTP-dependent cross-bridges between neighboring filament turns have led to the suggestion that dynamin operates as a molecular ratchet motor. However, the proof of such mechanism remains absent. Particularly, it is not known whether a powerful enough stroke is produced and how the motor modules would cooperate in the constriction process. Here, we characterized the dynamin motor modules by single-molecule Förster resonance energy transfer (smFRET) and found strong nucleotide-dependent conformational preferences. Integrating smFRET with molecular dynamics simulations allowed us to estimate the forces generated in a power stroke. Subsequently, the quantitative force data and the measured kinetics of the GTPase cycle were incorporated into a model including both a dynamin filament, with explicit motor cross-bridges, and a realistic deformable membrane template. In our simulations, collective constriction of the membrane by dynamin motor modules, based on the ratchet mechanism, is directly reproduced and analyzed. Functional parallels between the dynamin system and actomyosin in the muscle are seen. Through concerted action of the motors, tight membrane constriction to the hemifission radius can be reached. Our experimental and computational study provides an example of how collective motor action in megadalton molecular assemblies can be approached and explicitly resolved. National Academy of Sciences 2021-07-13 2021-07-09 /pmc/articles/PMC8285958/ /pubmed/34244431 http://dx.doi.org/10.1073/pnas.2101144118 Text en Copyright © 2021 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Physical Sciences
Ganichkin, Oleg M.
Vancraenenbroeck, Renee
Rosenblum, Gabriel
Hofmann, Hagen
Mikhailov, Alexander S.
Daumke, Oliver
Noel, Jeffrey K.
Quantification and demonstration of the collective constriction-by-ratchet mechanism in the dynamin molecular motor
title Quantification and demonstration of the collective constriction-by-ratchet mechanism in the dynamin molecular motor
title_full Quantification and demonstration of the collective constriction-by-ratchet mechanism in the dynamin molecular motor
title_fullStr Quantification and demonstration of the collective constriction-by-ratchet mechanism in the dynamin molecular motor
title_full_unstemmed Quantification and demonstration of the collective constriction-by-ratchet mechanism in the dynamin molecular motor
title_short Quantification and demonstration of the collective constriction-by-ratchet mechanism in the dynamin molecular motor
title_sort quantification and demonstration of the collective constriction-by-ratchet mechanism in the dynamin molecular motor
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8285958/
https://www.ncbi.nlm.nih.gov/pubmed/34244431
http://dx.doi.org/10.1073/pnas.2101144118
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