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

Authors :
Gary J. Brouhard
Susanne Bechstedt
Michael G. Noujaim
Michal Wieczorek
Source :
PLoS ONE, 9 (2), PLoS ONE, Vol 9, Iss 2, p e86786 (2014), PLoS ONE
Publication Year :
2014
Publisher :
ETH Zurich, 2014.

Abstract

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 microtubuleassociated substrates.<br />PLoS ONE, 9 (2)<br />ISSN:1932-6203

Details

Language :
English
ISSN :
19326203
Database :
OpenAIRE
Journal :
PLoS ONE, 9 (2), PLoS ONE, Vol 9, Iss 2, p e86786 (2014), PLoS ONE
Accession number :
edsair.doi.dedup.....7fd00a820f68551d002961cf0f348f22
Full Text :
https://doi.org/10.3929/ethz-b-000515966