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Posttranslational Modifications of Tubulin and the Polarized Transport of Kinesin-1 in Neurons

Polarized transport by microtubule-based motors is critical for neuronal development and function. Selective translocation of the Kinesin-1 motor domain is the earliest known marker of axonal identity, occurring before morphological differentiation. Thus, Kinesin-1–mediated transport may contribute...

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Autores principales: Hammond, Jennetta W., Huang, Chun-Fang, Kaech, Stefanie, Jacobson, Catherine, Banker, Gary, Verhey, Kristen J.
Formato: Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2820422/
https://www.ncbi.nlm.nih.gov/pubmed/20032309
http://dx.doi.org/10.1091/mbc.E09-01-0044
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author Hammond, Jennetta W.
Huang, Chun-Fang
Kaech, Stefanie
Jacobson, Catherine
Banker, Gary
Verhey, Kristen J.
author_facet Hammond, Jennetta W.
Huang, Chun-Fang
Kaech, Stefanie
Jacobson, Catherine
Banker, Gary
Verhey, Kristen J.
author_sort Hammond, Jennetta W.
collection PubMed
description Polarized transport by microtubule-based motors is critical for neuronal development and function. Selective translocation of the Kinesin-1 motor domain is the earliest known marker of axonal identity, occurring before morphological differentiation. Thus, Kinesin-1–mediated transport may contribute to axonal specification. We tested whether posttranslational modifications of tubulin influence the ability of Kinesin-1 motors to distinguish microtubule tracks during neuronal development. We detected no difference in microtubule stability between axons and minor neurites in polarized stage 3 hippocampal neurons. In contrast, microtubule modifications were enriched in a subset of neurites in unpolarized stage 2 cells and the developing axon in polarized stage 3 cells. This enrichment correlated with the selective accumulation of constitutively active Kinesin-1 motors. Increasing tubulin acetylation, without altering the levels of other tubulin modifications, did not alter the selectivity of Kinesin-1 accumulation in polarized cells. However, globally enhancing tubulin acetylation, detyrosination, and polyglutamylation by Taxol treatment or inhibition of glycogen synthase kinase 3β decreased the selectivity of Kinesin-1 translocation and led to the formation of multiple axons. Although microtubule acetylation enhances the motility of Kinesin-1, the preferential translocation of Kinesin-1 on axonal microtubules in polarized neuronal cells is not determined by acetylation alone but is probably specified by a combination of tubulin modifications.
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spelling pubmed-28204222010-04-30 Posttranslational Modifications of Tubulin and the Polarized Transport of Kinesin-1 in Neurons Hammond, Jennetta W. Huang, Chun-Fang Kaech, Stefanie Jacobson, Catherine Banker, Gary Verhey, Kristen J. Mol Biol Cell Articles Polarized transport by microtubule-based motors is critical for neuronal development and function. Selective translocation of the Kinesin-1 motor domain is the earliest known marker of axonal identity, occurring before morphological differentiation. Thus, Kinesin-1–mediated transport may contribute to axonal specification. We tested whether posttranslational modifications of tubulin influence the ability of Kinesin-1 motors to distinguish microtubule tracks during neuronal development. We detected no difference in microtubule stability between axons and minor neurites in polarized stage 3 hippocampal neurons. In contrast, microtubule modifications were enriched in a subset of neurites in unpolarized stage 2 cells and the developing axon in polarized stage 3 cells. This enrichment correlated with the selective accumulation of constitutively active Kinesin-1 motors. Increasing tubulin acetylation, without altering the levels of other tubulin modifications, did not alter the selectivity of Kinesin-1 accumulation in polarized cells. However, globally enhancing tubulin acetylation, detyrosination, and polyglutamylation by Taxol treatment or inhibition of glycogen synthase kinase 3β decreased the selectivity of Kinesin-1 translocation and led to the formation of multiple axons. Although microtubule acetylation enhances the motility of Kinesin-1, the preferential translocation of Kinesin-1 on axonal microtubules in polarized neuronal cells is not determined by acetylation alone but is probably specified by a combination of tubulin modifications. The American Society for Cell Biology 2010-02-15 /pmc/articles/PMC2820422/ /pubmed/20032309 http://dx.doi.org/10.1091/mbc.E09-01-0044 Text en © 2010 by The American Society for Cell Biology
spellingShingle Articles
Hammond, Jennetta W.
Huang, Chun-Fang
Kaech, Stefanie
Jacobson, Catherine
Banker, Gary
Verhey, Kristen J.
Posttranslational Modifications of Tubulin and the Polarized Transport of Kinesin-1 in Neurons
title Posttranslational Modifications of Tubulin and the Polarized Transport of Kinesin-1 in Neurons
title_full Posttranslational Modifications of Tubulin and the Polarized Transport of Kinesin-1 in Neurons
title_fullStr Posttranslational Modifications of Tubulin and the Polarized Transport of Kinesin-1 in Neurons
title_full_unstemmed Posttranslational Modifications of Tubulin and the Polarized Transport of Kinesin-1 in Neurons
title_short Posttranslational Modifications of Tubulin and the Polarized Transport of Kinesin-1 in Neurons
title_sort posttranslational modifications of tubulin and the polarized transport of kinesin-1 in neurons
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2820422/
https://www.ncbi.nlm.nih.gov/pubmed/20032309
http://dx.doi.org/10.1091/mbc.E09-01-0044
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