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CLASP Suppresses Microtubule Catastrophes through a Single TOG Domain

The dynamic instability of microtubules plays a key role in controlling their organization and function, but the cellular mechanisms regulating this process are poorly understood. Here, we show that cytoplasmic linker-associated proteins (CLASPs) suppress transitions from microtubule growth to short...

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Autores principales: Aher, Amol, Kok, Maurits, Sharma, Ashwani, Rai, Ankit, Olieric, Natacha, Rodriguez-Garcia, Ruddi, Katrukha, Eugene A., Weinert, Tobias, Olieric, Vincent, Kapitein, Lukas C., Steinmetz, Michel O., Dogterom, Marileen, Akhmanova, Anna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6035287/
https://www.ncbi.nlm.nih.gov/pubmed/29937387
http://dx.doi.org/10.1016/j.devcel.2018.05.032
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author Aher, Amol
Kok, Maurits
Sharma, Ashwani
Rai, Ankit
Olieric, Natacha
Rodriguez-Garcia, Ruddi
Katrukha, Eugene A.
Weinert, Tobias
Olieric, Vincent
Kapitein, Lukas C.
Steinmetz, Michel O.
Dogterom, Marileen
Akhmanova, Anna
author_facet Aher, Amol
Kok, Maurits
Sharma, Ashwani
Rai, Ankit
Olieric, Natacha
Rodriguez-Garcia, Ruddi
Katrukha, Eugene A.
Weinert, Tobias
Olieric, Vincent
Kapitein, Lukas C.
Steinmetz, Michel O.
Dogterom, Marileen
Akhmanova, Anna
author_sort Aher, Amol
collection PubMed
description The dynamic instability of microtubules plays a key role in controlling their organization and function, but the cellular mechanisms regulating this process are poorly understood. Here, we show that cytoplasmic linker-associated proteins (CLASPs) suppress transitions from microtubule growth to shortening, termed catastrophes, including those induced by microtubule-destabilizing agents and physical barriers. Mammalian CLASPs encompass three TOG-like domains, TOG1, TOG2, and TOG3, none of which bind to free tubulin. TOG2 is essential for catastrophe suppression, whereas TOG3 mildly enhances rescues but cannot suppress catastrophes. These functions are inhibited by the C-terminal domain of CLASP2, while the TOG1 domain can release this auto-inhibition. TOG2 fused to a positively charged microtubule-binding peptide autonomously accumulates at growing but not shrinking ends, suppresses catastrophes, and stimulates rescues. CLASPs suppress catastrophes by stabilizing growing microtubule ends, including incomplete ones, preventing their depolymerization and promoting their recovery into complete tubes. TOG2 domain is the key determinant of these activities.
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spelling pubmed-60352872018-07-09 CLASP Suppresses Microtubule Catastrophes through a Single TOG Domain Aher, Amol Kok, Maurits Sharma, Ashwani Rai, Ankit Olieric, Natacha Rodriguez-Garcia, Ruddi Katrukha, Eugene A. Weinert, Tobias Olieric, Vincent Kapitein, Lukas C. Steinmetz, Michel O. Dogterom, Marileen Akhmanova, Anna Dev Cell Article The dynamic instability of microtubules plays a key role in controlling their organization and function, but the cellular mechanisms regulating this process are poorly understood. Here, we show that cytoplasmic linker-associated proteins (CLASPs) suppress transitions from microtubule growth to shortening, termed catastrophes, including those induced by microtubule-destabilizing agents and physical barriers. Mammalian CLASPs encompass three TOG-like domains, TOG1, TOG2, and TOG3, none of which bind to free tubulin. TOG2 is essential for catastrophe suppression, whereas TOG3 mildly enhances rescues but cannot suppress catastrophes. These functions are inhibited by the C-terminal domain of CLASP2, while the TOG1 domain can release this auto-inhibition. TOG2 fused to a positively charged microtubule-binding peptide autonomously accumulates at growing but not shrinking ends, suppresses catastrophes, and stimulates rescues. CLASPs suppress catastrophes by stabilizing growing microtubule ends, including incomplete ones, preventing their depolymerization and promoting their recovery into complete tubes. TOG2 domain is the key determinant of these activities. Cell Press 2018-07-02 /pmc/articles/PMC6035287/ /pubmed/29937387 http://dx.doi.org/10.1016/j.devcel.2018.05.032 Text en © 2018 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 Article
Aher, Amol
Kok, Maurits
Sharma, Ashwani
Rai, Ankit
Olieric, Natacha
Rodriguez-Garcia, Ruddi
Katrukha, Eugene A.
Weinert, Tobias
Olieric, Vincent
Kapitein, Lukas C.
Steinmetz, Michel O.
Dogterom, Marileen
Akhmanova, Anna
CLASP Suppresses Microtubule Catastrophes through a Single TOG Domain
title CLASP Suppresses Microtubule Catastrophes through a Single TOG Domain
title_full CLASP Suppresses Microtubule Catastrophes through a Single TOG Domain
title_fullStr CLASP Suppresses Microtubule Catastrophes through a Single TOG Domain
title_full_unstemmed CLASP Suppresses Microtubule Catastrophes through a Single TOG Domain
title_short CLASP Suppresses Microtubule Catastrophes through a Single TOG Domain
title_sort clasp suppresses microtubule catastrophes through a single tog domain
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6035287/
https://www.ncbi.nlm.nih.gov/pubmed/29937387
http://dx.doi.org/10.1016/j.devcel.2018.05.032
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