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Opposing role of condensin hinge against replication protein A in mitosis and interphase through promoting DNA annealing

Condensin is required for chromosome dynamics and diverse DNA metabolism. How condensin works, however, is not well understood. Condensin contains two structural maintenance of chromosomes (SMC) subunits with the terminal globular domains connected to coiled-coil that is interrupted by the central h...

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Autores principales: Akai, Yuko, Kurokawa, Yumiko, Nakazawa, Norihiko, Tonami-Murakami, Yuko, Suzuki, Yuki, Yoshimura, Shige H., Iwasaki, Hiroshi, Shiroiwa, Yoshiharu, Nakamura, Takahiro, Shibata, Eri, Yanagida, Mitsuhiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3352087/
https://www.ncbi.nlm.nih.gov/pubmed/22645654
http://dx.doi.org/10.1098/rsob.110023
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author Akai, Yuko
Kurokawa, Yumiko
Nakazawa, Norihiko
Tonami-Murakami, Yuko
Suzuki, Yuki
Yoshimura, Shige H.
Iwasaki, Hiroshi
Shiroiwa, Yoshiharu
Nakamura, Takahiro
Shibata, Eri
Yanagida, Mitsuhiro
author_facet Akai, Yuko
Kurokawa, Yumiko
Nakazawa, Norihiko
Tonami-Murakami, Yuko
Suzuki, Yuki
Yoshimura, Shige H.
Iwasaki, Hiroshi
Shiroiwa, Yoshiharu
Nakamura, Takahiro
Shibata, Eri
Yanagida, Mitsuhiro
author_sort Akai, Yuko
collection PubMed
description Condensin is required for chromosome dynamics and diverse DNA metabolism. How condensin works, however, is not well understood. Condensin contains two structural maintenance of chromosomes (SMC) subunits with the terminal globular domains connected to coiled-coil that is interrupted by the central hinge. Heterotrimeric non-SMC subunits regulate SMC. We identified a novel fission yeast SMC hinge mutant, cut14-Y1, which displayed defects in DNA damage repair and chromosome segregation. It contains an amino acid substitution at a conserved hinge residue of Cut14/SMC2, resulting in diminished DNA binding and annealing. A replication protein A mutant, ssb1-418, greatly alleviated the repair and mitotic defects of cut14-Y1. Ssb1 protein formed nucleolar foci in cut14-Y1 cells, but the number of foci was diminished in cut14-Y1 ssb1-418 double mutants. Consistent with the above results, Ssb1 protein bound to single-strand DNA was removed by condensin or the SMC dimer through DNA reannealing in vitro. Similarly, RNA hybridized to DNA may be removed by the SMC dimer. Thus, condensin may wind up DNA strands to unload chromosomal components after DNA repair and prior to mitosis. We show that 16 suppressor mutations of cut14-Y1 were all mapped within the hinge domain, which surrounded the original L543 mutation site.
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spelling pubmed-33520872012-05-29 Opposing role of condensin hinge against replication protein A in mitosis and interphase through promoting DNA annealing Akai, Yuko Kurokawa, Yumiko Nakazawa, Norihiko Tonami-Murakami, Yuko Suzuki, Yuki Yoshimura, Shige H. Iwasaki, Hiroshi Shiroiwa, Yoshiharu Nakamura, Takahiro Shibata, Eri Yanagida, Mitsuhiro Open Biol Research Condensin is required for chromosome dynamics and diverse DNA metabolism. How condensin works, however, is not well understood. Condensin contains two structural maintenance of chromosomes (SMC) subunits with the terminal globular domains connected to coiled-coil that is interrupted by the central hinge. Heterotrimeric non-SMC subunits regulate SMC. We identified a novel fission yeast SMC hinge mutant, cut14-Y1, which displayed defects in DNA damage repair and chromosome segregation. It contains an amino acid substitution at a conserved hinge residue of Cut14/SMC2, resulting in diminished DNA binding and annealing. A replication protein A mutant, ssb1-418, greatly alleviated the repair and mitotic defects of cut14-Y1. Ssb1 protein formed nucleolar foci in cut14-Y1 cells, but the number of foci was diminished in cut14-Y1 ssb1-418 double mutants. Consistent with the above results, Ssb1 protein bound to single-strand DNA was removed by condensin or the SMC dimer through DNA reannealing in vitro. Similarly, RNA hybridized to DNA may be removed by the SMC dimer. Thus, condensin may wind up DNA strands to unload chromosomal components after DNA repair and prior to mitosis. We show that 16 suppressor mutations of cut14-Y1 were all mapped within the hinge domain, which surrounded the original L543 mutation site. The Royal Society 2011-12 /pmc/articles/PMC3352087/ /pubmed/22645654 http://dx.doi.org/10.1098/rsob.110023 Text en http://creativecommons.org/licenses/by/3.0/ © 2011 The Authors. Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/3.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Research
Akai, Yuko
Kurokawa, Yumiko
Nakazawa, Norihiko
Tonami-Murakami, Yuko
Suzuki, Yuki
Yoshimura, Shige H.
Iwasaki, Hiroshi
Shiroiwa, Yoshiharu
Nakamura, Takahiro
Shibata, Eri
Yanagida, Mitsuhiro
Opposing role of condensin hinge against replication protein A in mitosis and interphase through promoting DNA annealing
title Opposing role of condensin hinge against replication protein A in mitosis and interphase through promoting DNA annealing
title_full Opposing role of condensin hinge against replication protein A in mitosis and interphase through promoting DNA annealing
title_fullStr Opposing role of condensin hinge against replication protein A in mitosis and interphase through promoting DNA annealing
title_full_unstemmed Opposing role of condensin hinge against replication protein A in mitosis and interphase through promoting DNA annealing
title_short Opposing role of condensin hinge against replication protein A in mitosis and interphase through promoting DNA annealing
title_sort opposing role of condensin hinge against replication protein a in mitosis and interphase through promoting dna annealing
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3352087/
https://www.ncbi.nlm.nih.gov/pubmed/22645654
http://dx.doi.org/10.1098/rsob.110023
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