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Misato Controls Mitotic Microtubule Generation by Stabilizing the Tubulin Chaperone Protein-1 Complex

Mitotic spindles are primarily composed of microtubules (MTs), generated by polymerization of α- and β-Tubulin hetero-dimers [1, 2]. Tubulins undergo a series of protein folding and post-translational modifications in order to fulfill their functions [3, 4]. Defects in Tubulin polymerization dramati...

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Autores principales: Palumbo, Valeria, Pellacani, Claudia, Heesom, Kate J., Rogala, Kacper B., Deane, Charlotte M., Mottier-Pavie, Violaine, Gatti, Maurizio, Bonaccorsi, Silvia, Wakefield, James G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4510148/
https://www.ncbi.nlm.nih.gov/pubmed/26096973
http://dx.doi.org/10.1016/j.cub.2015.05.033
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author Palumbo, Valeria
Pellacani, Claudia
Heesom, Kate J.
Rogala, Kacper B.
Deane, Charlotte M.
Mottier-Pavie, Violaine
Gatti, Maurizio
Bonaccorsi, Silvia
Wakefield, James G.
author_facet Palumbo, Valeria
Pellacani, Claudia
Heesom, Kate J.
Rogala, Kacper B.
Deane, Charlotte M.
Mottier-Pavie, Violaine
Gatti, Maurizio
Bonaccorsi, Silvia
Wakefield, James G.
author_sort Palumbo, Valeria
collection PubMed
description Mitotic spindles are primarily composed of microtubules (MTs), generated by polymerization of α- and β-Tubulin hetero-dimers [1, 2]. Tubulins undergo a series of protein folding and post-translational modifications in order to fulfill their functions [3, 4]. Defects in Tubulin polymerization dramatically affect spindle formation and disrupt chromosome segregation. We recently described a role for the product of the conserved misato (mst) gene in regulating mitotic MT generation in flies [5], but the molecular function of Mst remains unknown. Here, we use affinity purification mass spectrometry (AP-MS) to identify interacting partners of Mst in the Drosophila embryo. We demonstrate that Mst associates stoichiometrically with the hetero-octameric Tubulin Chaperone Protein-1 (TCP-1) complex, with the hetero-hexameric Tubulin Prefoldin complex, and with proteins having conserved roles in generating MT-competent Tubulin. We show that RNAi-mediated in vivo depletion of any TCP-1 subunit phenocopies the effects of mutations in mst or the Prefoldin-encoding gene merry-go-round (mgr), leading to monopolar and disorganized mitotic spindles containing few MTs. Crucially, we demonstrate that Mst, but not Mgr, is required for TCP-1 complex stability and that both the efficiency of Tubulin polymerization and Tubulin stability are drastically compromised in mst mutants. Moreover, our structural bioinformatic analyses indicate that Mst resembles the three-dimensional structure of Tubulin monomers and might therefore occupy the TCP-1 complex central cavity. Collectively, our results suggest that Mst acts as a co-factor of the TCP-1 complex, playing an essential role in the Tubulin-folding processes required for proper assembly of spindle MTs.
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spelling pubmed-45101482015-08-07 Misato Controls Mitotic Microtubule Generation by Stabilizing the Tubulin Chaperone Protein-1 Complex Palumbo, Valeria Pellacani, Claudia Heesom, Kate J. Rogala, Kacper B. Deane, Charlotte M. Mottier-Pavie, Violaine Gatti, Maurizio Bonaccorsi, Silvia Wakefield, James G. Curr Biol Report Mitotic spindles are primarily composed of microtubules (MTs), generated by polymerization of α- and β-Tubulin hetero-dimers [1, 2]. Tubulins undergo a series of protein folding and post-translational modifications in order to fulfill their functions [3, 4]. Defects in Tubulin polymerization dramatically affect spindle formation and disrupt chromosome segregation. We recently described a role for the product of the conserved misato (mst) gene in regulating mitotic MT generation in flies [5], but the molecular function of Mst remains unknown. Here, we use affinity purification mass spectrometry (AP-MS) to identify interacting partners of Mst in the Drosophila embryo. We demonstrate that Mst associates stoichiometrically with the hetero-octameric Tubulin Chaperone Protein-1 (TCP-1) complex, with the hetero-hexameric Tubulin Prefoldin complex, and with proteins having conserved roles in generating MT-competent Tubulin. We show that RNAi-mediated in vivo depletion of any TCP-1 subunit phenocopies the effects of mutations in mst or the Prefoldin-encoding gene merry-go-round (mgr), leading to monopolar and disorganized mitotic spindles containing few MTs. Crucially, we demonstrate that Mst, but not Mgr, is required for TCP-1 complex stability and that both the efficiency of Tubulin polymerization and Tubulin stability are drastically compromised in mst mutants. Moreover, our structural bioinformatic analyses indicate that Mst resembles the three-dimensional structure of Tubulin monomers and might therefore occupy the TCP-1 complex central cavity. Collectively, our results suggest that Mst acts as a co-factor of the TCP-1 complex, playing an essential role in the Tubulin-folding processes required for proper assembly of spindle MTs. Cell Press 2015-06-29 /pmc/articles/PMC4510148/ /pubmed/26096973 http://dx.doi.org/10.1016/j.cub.2015.05.033 Text en © 2015 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Report
Palumbo, Valeria
Pellacani, Claudia
Heesom, Kate J.
Rogala, Kacper B.
Deane, Charlotte M.
Mottier-Pavie, Violaine
Gatti, Maurizio
Bonaccorsi, Silvia
Wakefield, James G.
Misato Controls Mitotic Microtubule Generation by Stabilizing the Tubulin Chaperone Protein-1 Complex
title Misato Controls Mitotic Microtubule Generation by Stabilizing the Tubulin Chaperone Protein-1 Complex
title_full Misato Controls Mitotic Microtubule Generation by Stabilizing the Tubulin Chaperone Protein-1 Complex
title_fullStr Misato Controls Mitotic Microtubule Generation by Stabilizing the Tubulin Chaperone Protein-1 Complex
title_full_unstemmed Misato Controls Mitotic Microtubule Generation by Stabilizing the Tubulin Chaperone Protein-1 Complex
title_short Misato Controls Mitotic Microtubule Generation by Stabilizing the Tubulin Chaperone Protein-1 Complex
title_sort misato controls mitotic microtubule generation by stabilizing the tubulin chaperone protein-1 complex
topic Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4510148/
https://www.ncbi.nlm.nih.gov/pubmed/26096973
http://dx.doi.org/10.1016/j.cub.2015.05.033
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