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A Single Cohesin Complex Performs Mitotic and Meiotic Functions in the Protist Tetrahymena

The cohesion of sister chromatids in the interval between chromosome replication and anaphase is important for preventing the precocious separation, and hence nondisjunction, of chromatids. Cohesion is accomplished by a ring-shaped protein complex, cohesin; and its release at anaphase occurs when se...

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Autores principales: Howard-Till, Rachel A., Lukaszewicz, Agnieszka, Novatchkova, Maria, Loidl, Josef
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3610610/
https://www.ncbi.nlm.nih.gov/pubmed/23555314
http://dx.doi.org/10.1371/journal.pgen.1003418
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author Howard-Till, Rachel A.
Lukaszewicz, Agnieszka
Novatchkova, Maria
Loidl, Josef
author_facet Howard-Till, Rachel A.
Lukaszewicz, Agnieszka
Novatchkova, Maria
Loidl, Josef
author_sort Howard-Till, Rachel A.
collection PubMed
description The cohesion of sister chromatids in the interval between chromosome replication and anaphase is important for preventing the precocious separation, and hence nondisjunction, of chromatids. Cohesion is accomplished by a ring-shaped protein complex, cohesin; and its release at anaphase occurs when separase cleaves the complex's α-kleisin subunit. Cohesin has additional roles in facilitating DNA damage repair from the sister chromatid and in regulating gene expression. We tested the universality of the present model of cohesion by studying cohesin in the evolutionarily distant protist Tetrahymena thermophila. Localization of tagged cohesin components Smc1p and Rec8p (the α-kleisin) showed that cohesin is abundant in mitotic and meiotic nuclei. RNAi knockdown experiments demonstrated that cohesin is crucial for normal chromosome segregation and meiotic DSB repair. Unexpectedly, cohesin does not detach from chromosome arms in anaphase, yet chromosome segregation depends on the activity of separase (Esp1p). When Esp1p is depleted by RNAi, chromosomes become polytenic as they undergo multiple rounds of replication, but fail to separate. The cohesion of such bundles of numerous chromatids suggests that chromatids may be connected by factors in addition to topological linkage by cohesin rings. Although cohesin is not detected in transcriptionally active somatic nuclei, its loss causes a slight defect in their amitotic division. Notably, Tetrahymena uses a single version of α-kleisin for both mitosis and meiosis. Therefore, we propose that the differentiation of mitotic and meiotic cohesins found in most other model systems is not due to the need of a specialized meiotic cohesin, but due to additional roles of mitotic cohesin.
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spelling pubmed-36106102013-04-03 A Single Cohesin Complex Performs Mitotic and Meiotic Functions in the Protist Tetrahymena Howard-Till, Rachel A. Lukaszewicz, Agnieszka Novatchkova, Maria Loidl, Josef PLoS Genet Research Article The cohesion of sister chromatids in the interval between chromosome replication and anaphase is important for preventing the precocious separation, and hence nondisjunction, of chromatids. Cohesion is accomplished by a ring-shaped protein complex, cohesin; and its release at anaphase occurs when separase cleaves the complex's α-kleisin subunit. Cohesin has additional roles in facilitating DNA damage repair from the sister chromatid and in regulating gene expression. We tested the universality of the present model of cohesion by studying cohesin in the evolutionarily distant protist Tetrahymena thermophila. Localization of tagged cohesin components Smc1p and Rec8p (the α-kleisin) showed that cohesin is abundant in mitotic and meiotic nuclei. RNAi knockdown experiments demonstrated that cohesin is crucial for normal chromosome segregation and meiotic DSB repair. Unexpectedly, cohesin does not detach from chromosome arms in anaphase, yet chromosome segregation depends on the activity of separase (Esp1p). When Esp1p is depleted by RNAi, chromosomes become polytenic as they undergo multiple rounds of replication, but fail to separate. The cohesion of such bundles of numerous chromatids suggests that chromatids may be connected by factors in addition to topological linkage by cohesin rings. Although cohesin is not detected in transcriptionally active somatic nuclei, its loss causes a slight defect in their amitotic division. Notably, Tetrahymena uses a single version of α-kleisin for both mitosis and meiosis. Therefore, we propose that the differentiation of mitotic and meiotic cohesins found in most other model systems is not due to the need of a specialized meiotic cohesin, but due to additional roles of mitotic cohesin. Public Library of Science 2013-03-28 /pmc/articles/PMC3610610/ /pubmed/23555314 http://dx.doi.org/10.1371/journal.pgen.1003418 Text en © 2013 Howard-Till 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
Howard-Till, Rachel A.
Lukaszewicz, Agnieszka
Novatchkova, Maria
Loidl, Josef
A Single Cohesin Complex Performs Mitotic and Meiotic Functions in the Protist Tetrahymena
title A Single Cohesin Complex Performs Mitotic and Meiotic Functions in the Protist Tetrahymena
title_full A Single Cohesin Complex Performs Mitotic and Meiotic Functions in the Protist Tetrahymena
title_fullStr A Single Cohesin Complex Performs Mitotic and Meiotic Functions in the Protist Tetrahymena
title_full_unstemmed A Single Cohesin Complex Performs Mitotic and Meiotic Functions in the Protist Tetrahymena
title_short A Single Cohesin Complex Performs Mitotic and Meiotic Functions in the Protist Tetrahymena
title_sort single cohesin complex performs mitotic and meiotic functions in the protist tetrahymena
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3610610/
https://www.ncbi.nlm.nih.gov/pubmed/23555314
http://dx.doi.org/10.1371/journal.pgen.1003418
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