C. elegans germ cells switch between distinct modes of double-strand break repair during meiotic prophase progression.

Chromosome inheritance during sexual reproduction relies on deliberate induction of double-strand DNA breaks (DSBs) and repair of a subset of these breaks as interhomolog crossovers (COs). Here we provide a direct demonstration, based on our analysis of rad-50 mutants, that the meiotic program in Ca...

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Main Authors: Michiko Hayashi, Gregory M Chin, Anne M Villeneuve
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2007-11-01
Series:PLoS Genetics
Online Access:http://europepmc.org/articles/PMC2048528?pdf=render
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spelling doaj-544be0efbaf64dad9183d54d669cea412020-11-25T01:16:11ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042007-11-01311e19110.1371/journal.pgen.0030191C. elegans germ cells switch between distinct modes of double-strand break repair during meiotic prophase progression.Michiko HayashiGregory M ChinAnne M VilleneuveChromosome inheritance during sexual reproduction relies on deliberate induction of double-strand DNA breaks (DSBs) and repair of a subset of these breaks as interhomolog crossovers (COs). Here we provide a direct demonstration, based on our analysis of rad-50 mutants, that the meiotic program in Caenorhabditis elegans involves both acquisition and loss of a specialized mode of double-strand break repair (DSBR). In premeiotic germ cells, RAD-50 is not required to load strand-exchange protein RAD-51 at sites of spontaneous or ionizing radiation (IR)-induced DSBs. A specialized meiotic DSBR mode is engaged at the onset of meiotic prophase, coincident with assembly of meiotic chromosome axis structures. This meiotic DSBR mode is characterized both by dependence on RAD-50 for rapid accumulation of RAD-51 at DSB sites and by competence for converting DSBs into interhomolog COs. At the mid-pachytene to late pachytene transition, germ cells undergo an abrupt release from the meiotic DSBR mode, characterized by reversion to RAD-50-independent loading of RAD-51 and loss of competence to convert DSBs into interhomolog COs. This transition in DSBR mode is dependent on MAP kinase-triggered prophase progression and coincides temporally with a major remodeling of chromosome architecture. We propose that at least two developmentally programmed switches in DSBR mode, likely conferred by changes in chromosome architecture, operate in the C. elegans germ line to allow formation of meiotic crossovers without jeopardizing genomic integrity. Our data further suggest that meiotic cohesin component REC-8 may play a role in limiting the activity of SPO-11 in generating meiotic DSBs and that RAD-50 may function in counteracting this inhibition.http://europepmc.org/articles/PMC2048528?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Michiko Hayashi
Gregory M Chin
Anne M Villeneuve
spellingShingle Michiko Hayashi
Gregory M Chin
Anne M Villeneuve
C. elegans germ cells switch between distinct modes of double-strand break repair during meiotic prophase progression.
PLoS Genetics
author_facet Michiko Hayashi
Gregory M Chin
Anne M Villeneuve
author_sort Michiko Hayashi
title C. elegans germ cells switch between distinct modes of double-strand break repair during meiotic prophase progression.
title_short C. elegans germ cells switch between distinct modes of double-strand break repair during meiotic prophase progression.
title_full C. elegans germ cells switch between distinct modes of double-strand break repair during meiotic prophase progression.
title_fullStr C. elegans germ cells switch between distinct modes of double-strand break repair during meiotic prophase progression.
title_full_unstemmed C. elegans germ cells switch between distinct modes of double-strand break repair during meiotic prophase progression.
title_sort c. elegans germ cells switch between distinct modes of double-strand break repair during meiotic prophase progression.
publisher Public Library of Science (PLoS)
series PLoS Genetics
issn 1553-7390
1553-7404
publishDate 2007-11-01
description Chromosome inheritance during sexual reproduction relies on deliberate induction of double-strand DNA breaks (DSBs) and repair of a subset of these breaks as interhomolog crossovers (COs). Here we provide a direct demonstration, based on our analysis of rad-50 mutants, that the meiotic program in Caenorhabditis elegans involves both acquisition and loss of a specialized mode of double-strand break repair (DSBR). In premeiotic germ cells, RAD-50 is not required to load strand-exchange protein RAD-51 at sites of spontaneous or ionizing radiation (IR)-induced DSBs. A specialized meiotic DSBR mode is engaged at the onset of meiotic prophase, coincident with assembly of meiotic chromosome axis structures. This meiotic DSBR mode is characterized both by dependence on RAD-50 for rapid accumulation of RAD-51 at DSB sites and by competence for converting DSBs into interhomolog COs. At the mid-pachytene to late pachytene transition, germ cells undergo an abrupt release from the meiotic DSBR mode, characterized by reversion to RAD-50-independent loading of RAD-51 and loss of competence to convert DSBs into interhomolog COs. This transition in DSBR mode is dependent on MAP kinase-triggered prophase progression and coincides temporally with a major remodeling of chromosome architecture. We propose that at least two developmentally programmed switches in DSBR mode, likely conferred by changes in chromosome architecture, operate in the C. elegans germ line to allow formation of meiotic crossovers without jeopardizing genomic integrity. Our data further suggest that meiotic cohesin component REC-8 may play a role in limiting the activity of SPO-11 in generating meiotic DSBs and that RAD-50 may function in counteracting this inhibition.
url http://europepmc.org/articles/PMC2048528?pdf=render
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