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Pathogenic mutations in the kinesin-3 motor KIF1A diminish force generation and movement through allosteric mechanisms

The kinesin-3 motor KIF1A functions in neurons, where its fast and superprocessive motility facilitates long-distance transport, but little is known about its force-generating properties. Using optical tweezers, we demonstrate that KIF1A stalls at an opposing load of ~3 pN but more frequently detach...

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Autores principales: Budaitis, Breane G., Jariwala, Shashank, Rao, Lu, Yue, Yang, Sept, David, Verhey, Kristen J., Gennerich, Arne
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Rockefeller University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7844421/
https://www.ncbi.nlm.nih.gov/pubmed/33496723
http://dx.doi.org/10.1083/jcb.202004227
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author Budaitis, Breane G.
Jariwala, Shashank
Rao, Lu
Yue, Yang
Sept, David
Verhey, Kristen J.
Gennerich, Arne
author_facet Budaitis, Breane G.
Jariwala, Shashank
Rao, Lu
Yue, Yang
Sept, David
Verhey, Kristen J.
Gennerich, Arne
author_sort Budaitis, Breane G.
collection PubMed
description The kinesin-3 motor KIF1A functions in neurons, where its fast and superprocessive motility facilitates long-distance transport, but little is known about its force-generating properties. Using optical tweezers, we demonstrate that KIF1A stalls at an opposing load of ~3 pN but more frequently detaches at lower forces. KIF1A rapidly reattaches to the microtubule to resume motion due to its class-specific K-loop, resulting in a unique clustering of force generation events. To test the importance of neck linker docking in KIF1A force generation, we introduced mutations linked to human neurodevelopmental disorders. Molecular dynamics simulations predict that V8M and Y89D mutations impair neck linker docking. Indeed, both mutations dramatically reduce the force generation of KIF1A but not the motor’s ability to rapidly reattach to the microtubule. Although both mutations relieve autoinhibition of the full-length motor, the mutant motors display decreased velocities, run lengths, and landing rates and delayed cargo transport in cells. These results advance our understanding of how mutations in KIF1A can manifest in disease.
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spelling pubmed-78444212021-03-10 Pathogenic mutations in the kinesin-3 motor KIF1A diminish force generation and movement through allosteric mechanisms Budaitis, Breane G. Jariwala, Shashank Rao, Lu Yue, Yang Sept, David Verhey, Kristen J. Gennerich, Arne J Cell Biol Article The kinesin-3 motor KIF1A functions in neurons, where its fast and superprocessive motility facilitates long-distance transport, but little is known about its force-generating properties. Using optical tweezers, we demonstrate that KIF1A stalls at an opposing load of ~3 pN but more frequently detaches at lower forces. KIF1A rapidly reattaches to the microtubule to resume motion due to its class-specific K-loop, resulting in a unique clustering of force generation events. To test the importance of neck linker docking in KIF1A force generation, we introduced mutations linked to human neurodevelopmental disorders. Molecular dynamics simulations predict that V8M and Y89D mutations impair neck linker docking. Indeed, both mutations dramatically reduce the force generation of KIF1A but not the motor’s ability to rapidly reattach to the microtubule. Although both mutations relieve autoinhibition of the full-length motor, the mutant motors display decreased velocities, run lengths, and landing rates and delayed cargo transport in cells. These results advance our understanding of how mutations in KIF1A can manifest in disease. Rockefeller University Press 2021-01-26 /pmc/articles/PMC7844421/ /pubmed/33496723 http://dx.doi.org/10.1083/jcb.202004227 Text en © 2021 Budaitis 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 Article
Budaitis, Breane G.
Jariwala, Shashank
Rao, Lu
Yue, Yang
Sept, David
Verhey, Kristen J.
Gennerich, Arne
Pathogenic mutations in the kinesin-3 motor KIF1A diminish force generation and movement through allosteric mechanisms
title Pathogenic mutations in the kinesin-3 motor KIF1A diminish force generation and movement through allosteric mechanisms
title_full Pathogenic mutations in the kinesin-3 motor KIF1A diminish force generation and movement through allosteric mechanisms
title_fullStr Pathogenic mutations in the kinesin-3 motor KIF1A diminish force generation and movement through allosteric mechanisms
title_full_unstemmed Pathogenic mutations in the kinesin-3 motor KIF1A diminish force generation and movement through allosteric mechanisms
title_short Pathogenic mutations in the kinesin-3 motor KIF1A diminish force generation and movement through allosteric mechanisms
title_sort pathogenic mutations in the kinesin-3 motor kif1a diminish force generation and movement through allosteric mechanisms
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7844421/
https://www.ncbi.nlm.nih.gov/pubmed/33496723
http://dx.doi.org/10.1083/jcb.202004227
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