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Microtubules Accelerate the Kinase Activity of Aurora-B by a Reduction in Dimensionality

Aurora-B is the kinase subunit of the Chromosome Passenger Complex (CPC), a key regulator of mitotic progression that corrects improper kinetochore attachments and establishes the spindle midzone. Recent work has demonstrated that the CPC is a microtubule-associated protein complex and that microtub...

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Autores principales: Noujaim, Michael, Bechstedt, Susanne, Wieczorek, Michal, Brouhard, Gary J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3912212/
https://www.ncbi.nlm.nih.gov/pubmed/24498282
http://dx.doi.org/10.1371/journal.pone.0086786
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author Noujaim, Michael
Bechstedt, Susanne
Wieczorek, Michal
Brouhard, Gary J.
author_facet Noujaim, Michael
Bechstedt, Susanne
Wieczorek, Michal
Brouhard, Gary J.
author_sort Noujaim, Michael
collection PubMed
description Aurora-B is the kinase subunit of the Chromosome Passenger Complex (CPC), a key regulator of mitotic progression that corrects improper kinetochore attachments and establishes the spindle midzone. Recent work has demonstrated that the CPC is a microtubule-associated protein complex and that microtubules are able to activate the CPC by contributing to Aurora-B auto-phosphorylation in trans. Aurora-B activation is thought to occur when the local concentration of Aurora-B is high, as occurs when Aurora-B is enriched at centromeres. It is not clear, however, whether distributed binding to large structures such as microtubules would increase the local concentration of Aurora-B. Here we show that microtubules accelerate the kinase activity of Aurora-B by a “reduction in dimensionality.” We find that microtubules increase the kinase activity of Aurora-B toward microtubule-associated substrates while reducing the phosphorylation levels of substrates not associated to microtubules. Using the single molecule assay for microtubule-associated proteins, we show that a minimal CPC construct binds to microtubules and diffuses in a one-dimensional (1D) random walk. The binding of Aurora-B to microtubules is salt-dependent and requires the C-terminal tails of tubulin, indicating that the interaction is electrostatic. We show that the rate of Aurora-B auto-activation is faster with increasing concentrations of microtubules. Finally, we demonstrate that microtubules lose their ability to stimulate Aurora-B when their C-terminal tails are removed by proteolysis. We propose a model in which microtubules act as scaffolds for the enzymatic activity of Aurora-B. The scaffolding activity of microtubules enables rapid Aurora-B activation and efficient phosphorylation of microtubule-associated substrates.
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spelling pubmed-39122122014-02-04 Microtubules Accelerate the Kinase Activity of Aurora-B by a Reduction in Dimensionality Noujaim, Michael Bechstedt, Susanne Wieczorek, Michal Brouhard, Gary J. PLoS One Research Article Aurora-B is the kinase subunit of the Chromosome Passenger Complex (CPC), a key regulator of mitotic progression that corrects improper kinetochore attachments and establishes the spindle midzone. Recent work has demonstrated that the CPC is a microtubule-associated protein complex and that microtubules are able to activate the CPC by contributing to Aurora-B auto-phosphorylation in trans. Aurora-B activation is thought to occur when the local concentration of Aurora-B is high, as occurs when Aurora-B is enriched at centromeres. It is not clear, however, whether distributed binding to large structures such as microtubules would increase the local concentration of Aurora-B. Here we show that microtubules accelerate the kinase activity of Aurora-B by a “reduction in dimensionality.” We find that microtubules increase the kinase activity of Aurora-B toward microtubule-associated substrates while reducing the phosphorylation levels of substrates not associated to microtubules. Using the single molecule assay for microtubule-associated proteins, we show that a minimal CPC construct binds to microtubules and diffuses in a one-dimensional (1D) random walk. The binding of Aurora-B to microtubules is salt-dependent and requires the C-terminal tails of tubulin, indicating that the interaction is electrostatic. We show that the rate of Aurora-B auto-activation is faster with increasing concentrations of microtubules. Finally, we demonstrate that microtubules lose their ability to stimulate Aurora-B when their C-terminal tails are removed by proteolysis. We propose a model in which microtubules act as scaffolds for the enzymatic activity of Aurora-B. The scaffolding activity of microtubules enables rapid Aurora-B activation and efficient phosphorylation of microtubule-associated substrates. Public Library of Science 2014-02-03 /pmc/articles/PMC3912212/ /pubmed/24498282 http://dx.doi.org/10.1371/journal.pone.0086786 Text en © 2014 Noujaim 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
Noujaim, Michael
Bechstedt, Susanne
Wieczorek, Michal
Brouhard, Gary J.
Microtubules Accelerate the Kinase Activity of Aurora-B by a Reduction in Dimensionality
title Microtubules Accelerate the Kinase Activity of Aurora-B by a Reduction in Dimensionality
title_full Microtubules Accelerate the Kinase Activity of Aurora-B by a Reduction in Dimensionality
title_fullStr Microtubules Accelerate the Kinase Activity of Aurora-B by a Reduction in Dimensionality
title_full_unstemmed Microtubules Accelerate the Kinase Activity of Aurora-B by a Reduction in Dimensionality
title_short Microtubules Accelerate the Kinase Activity of Aurora-B by a Reduction in Dimensionality
title_sort microtubules accelerate the kinase activity of aurora-b by a reduction in dimensionality
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3912212/
https://www.ncbi.nlm.nih.gov/pubmed/24498282
http://dx.doi.org/10.1371/journal.pone.0086786
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