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Mammalian Kinesin-3 Motors Are Dimeric In Vivo and Move by Processive Motility upon Release of Autoinhibition

Kinesin-3 motors drive the transport of synaptic vesicles and other membrane-bound organelles in neuronal cells. In the absence of cargo, kinesin motors are kept inactive to prevent motility and ATP hydrolysis. Current models state that the Kinesin-3 motor KIF1A is monomeric in the inactive state an...

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Autores principales: Hammond, Jennetta W, Cai, Dawen, Blasius, T. Lynne, Li, Zhe, Jiang, Yuyang, Jih, Gloria T, Meyhofer, Edgar, Verhey, Kristen J
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2661964/
https://www.ncbi.nlm.nih.gov/pubmed/19338388
http://dx.doi.org/10.1371/journal.pbio.1000072
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author Hammond, Jennetta W
Cai, Dawen
Blasius, T. Lynne
Li, Zhe
Jiang, Yuyang
Jih, Gloria T
Meyhofer, Edgar
Verhey, Kristen J
author_facet Hammond, Jennetta W
Cai, Dawen
Blasius, T. Lynne
Li, Zhe
Jiang, Yuyang
Jih, Gloria T
Meyhofer, Edgar
Verhey, Kristen J
author_sort Hammond, Jennetta W
collection PubMed
description Kinesin-3 motors drive the transport of synaptic vesicles and other membrane-bound organelles in neuronal cells. In the absence of cargo, kinesin motors are kept inactive to prevent motility and ATP hydrolysis. Current models state that the Kinesin-3 motor KIF1A is monomeric in the inactive state and that activation results from concentration-driven dimerization on the cargo membrane. To test this model, we have examined the activity and dimerization state of KIF1A. Unexpectedly, we found that both native and expressed proteins are dimeric in the inactive state. Thus, KIF1A motors are not activated by cargo-induced dimerization. Rather, we show that KIF1A motors are autoinhibited by two distinct inhibitory mechanisms, suggesting a simple model for activation of dimeric KIF1A motors by cargo binding. Successive truncations result in monomeric and dimeric motors that can undergo one-dimensional diffusion along the microtubule lattice. However, only dimeric motors undergo ATP-dependent processive motility. Thus, KIF1A may be uniquely suited to use both diffuse and processive motility to drive long-distance transport in neuronal cells.
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spelling pubmed-26619642009-03-31 Mammalian Kinesin-3 Motors Are Dimeric In Vivo and Move by Processive Motility upon Release of Autoinhibition Hammond, Jennetta W Cai, Dawen Blasius, T. Lynne Li, Zhe Jiang, Yuyang Jih, Gloria T Meyhofer, Edgar Verhey, Kristen J PLoS Biol Research Article Kinesin-3 motors drive the transport of synaptic vesicles and other membrane-bound organelles in neuronal cells. In the absence of cargo, kinesin motors are kept inactive to prevent motility and ATP hydrolysis. Current models state that the Kinesin-3 motor KIF1A is monomeric in the inactive state and that activation results from concentration-driven dimerization on the cargo membrane. To test this model, we have examined the activity and dimerization state of KIF1A. Unexpectedly, we found that both native and expressed proteins are dimeric in the inactive state. Thus, KIF1A motors are not activated by cargo-induced dimerization. Rather, we show that KIF1A motors are autoinhibited by two distinct inhibitory mechanisms, suggesting a simple model for activation of dimeric KIF1A motors by cargo binding. Successive truncations result in monomeric and dimeric motors that can undergo one-dimensional diffusion along the microtubule lattice. However, only dimeric motors undergo ATP-dependent processive motility. Thus, KIF1A may be uniquely suited to use both diffuse and processive motility to drive long-distance transport in neuronal cells. Public Library of Science 2009-03 2009-03-31 /pmc/articles/PMC2661964/ /pubmed/19338388 http://dx.doi.org/10.1371/journal.pbio.1000072 Text en © 2009 Hammond et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Hammond, Jennetta W
Cai, Dawen
Blasius, T. Lynne
Li, Zhe
Jiang, Yuyang
Jih, Gloria T
Meyhofer, Edgar
Verhey, Kristen J
Mammalian Kinesin-3 Motors Are Dimeric In Vivo and Move by Processive Motility upon Release of Autoinhibition
title Mammalian Kinesin-3 Motors Are Dimeric In Vivo and Move by Processive Motility upon Release of Autoinhibition
title_full Mammalian Kinesin-3 Motors Are Dimeric In Vivo and Move by Processive Motility upon Release of Autoinhibition
title_fullStr Mammalian Kinesin-3 Motors Are Dimeric In Vivo and Move by Processive Motility upon Release of Autoinhibition
title_full_unstemmed Mammalian Kinesin-3 Motors Are Dimeric In Vivo and Move by Processive Motility upon Release of Autoinhibition
title_short Mammalian Kinesin-3 Motors Are Dimeric In Vivo and Move by Processive Motility upon Release of Autoinhibition
title_sort mammalian kinesin-3 motors are dimeric in vivo and move by processive motility upon release of autoinhibition
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2661964/
https://www.ncbi.nlm.nih.gov/pubmed/19338388
http://dx.doi.org/10.1371/journal.pbio.1000072
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