Cargando…

A mutant form of Dmc1 that bypasses the requirement for accessory protein Mei5-Sae3 reveals independent activities of Mei5-Sae3 and Rad51 in Dmc1 filament stability

During meiosis, homologous recombination repairs programmed DNA double-stranded breaks. Meiotic recombination physically links the homologous chromosomes (“homologs”), creating the tension between them that is required for their segregation. The central recombinase in this process is Dmc1. Dmc1’s ac...

Descripción completa

Detalles Bibliográficos
Autores principales: Reitz, Diedre, Grubb, Jennifer, Bishop, Douglas K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6907854/
https://www.ncbi.nlm.nih.gov/pubmed/31790385
http://dx.doi.org/10.1371/journal.pgen.1008217
_version_ 1783478612593213440
author Reitz, Diedre
Grubb, Jennifer
Bishop, Douglas K.
author_facet Reitz, Diedre
Grubb, Jennifer
Bishop, Douglas K.
author_sort Reitz, Diedre
collection PubMed
description During meiosis, homologous recombination repairs programmed DNA double-stranded breaks. Meiotic recombination physically links the homologous chromosomes (“homologs”), creating the tension between them that is required for their segregation. The central recombinase in this process is Dmc1. Dmc1’s activity is regulated by its accessory factors including the heterodimeric protein Mei5-Sae3 and Rad51. We use a gain-of-function dmc1 mutant, dmc1-E157D, that bypasses Mei5-Sae3 to gain insight into the role of this accessory factor and its relationship to mitotic recombinase Rad51, which also functions as a Dmc1 accessory protein during meiosis. We find that Mei5-Sae3 has a role in filament formation and stability, but not in the bias of recombination partner choice that favors homolog over sister chromatids. Analysis of meiotic recombination intermediates suggests that Mei5-Sae3 and Rad51 function independently in promoting filament stability. In spite of its ability to load onto single-stranded DNA and carry out recombination in the absence of Mei5-Sae3, recombination promoted by the Dmc1 mutant is abnormal in that it forms foci in the absence of DNA breaks, displays unusually high levels of multi-chromatid and intersister joint molecule intermediates, as well as high levels of ectopic recombination products. We use super-resolution microscopy to show that the mutant protein forms longer foci than those formed by wild-type Dmc1. Our data support a model in which longer filaments are more prone to engage in aberrant recombination events, suggesting that filament lengths are normally limited by a regulatory mechanism that functions to prevent recombination-mediated genome rearrangements.
format Online
Article
Text
id pubmed-6907854
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-69078542019-12-27 A mutant form of Dmc1 that bypasses the requirement for accessory protein Mei5-Sae3 reveals independent activities of Mei5-Sae3 and Rad51 in Dmc1 filament stability Reitz, Diedre Grubb, Jennifer Bishop, Douglas K. PLoS Genet Research Article During meiosis, homologous recombination repairs programmed DNA double-stranded breaks. Meiotic recombination physically links the homologous chromosomes (“homologs”), creating the tension between them that is required for their segregation. The central recombinase in this process is Dmc1. Dmc1’s activity is regulated by its accessory factors including the heterodimeric protein Mei5-Sae3 and Rad51. We use a gain-of-function dmc1 mutant, dmc1-E157D, that bypasses Mei5-Sae3 to gain insight into the role of this accessory factor and its relationship to mitotic recombinase Rad51, which also functions as a Dmc1 accessory protein during meiosis. We find that Mei5-Sae3 has a role in filament formation and stability, but not in the bias of recombination partner choice that favors homolog over sister chromatids. Analysis of meiotic recombination intermediates suggests that Mei5-Sae3 and Rad51 function independently in promoting filament stability. In spite of its ability to load onto single-stranded DNA and carry out recombination in the absence of Mei5-Sae3, recombination promoted by the Dmc1 mutant is abnormal in that it forms foci in the absence of DNA breaks, displays unusually high levels of multi-chromatid and intersister joint molecule intermediates, as well as high levels of ectopic recombination products. We use super-resolution microscopy to show that the mutant protein forms longer foci than those formed by wild-type Dmc1. Our data support a model in which longer filaments are more prone to engage in aberrant recombination events, suggesting that filament lengths are normally limited by a regulatory mechanism that functions to prevent recombination-mediated genome rearrangements. Public Library of Science 2019-12-02 /pmc/articles/PMC6907854/ /pubmed/31790385 http://dx.doi.org/10.1371/journal.pgen.1008217 Text en © 2019 Reitz 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Reitz, Diedre
Grubb, Jennifer
Bishop, Douglas K.
A mutant form of Dmc1 that bypasses the requirement for accessory protein Mei5-Sae3 reveals independent activities of Mei5-Sae3 and Rad51 in Dmc1 filament stability
title A mutant form of Dmc1 that bypasses the requirement for accessory protein Mei5-Sae3 reveals independent activities of Mei5-Sae3 and Rad51 in Dmc1 filament stability
title_full A mutant form of Dmc1 that bypasses the requirement for accessory protein Mei5-Sae3 reveals independent activities of Mei5-Sae3 and Rad51 in Dmc1 filament stability
title_fullStr A mutant form of Dmc1 that bypasses the requirement for accessory protein Mei5-Sae3 reveals independent activities of Mei5-Sae3 and Rad51 in Dmc1 filament stability
title_full_unstemmed A mutant form of Dmc1 that bypasses the requirement for accessory protein Mei5-Sae3 reveals independent activities of Mei5-Sae3 and Rad51 in Dmc1 filament stability
title_short A mutant form of Dmc1 that bypasses the requirement for accessory protein Mei5-Sae3 reveals independent activities of Mei5-Sae3 and Rad51 in Dmc1 filament stability
title_sort mutant form of dmc1 that bypasses the requirement for accessory protein mei5-sae3 reveals independent activities of mei5-sae3 and rad51 in dmc1 filament stability
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6907854/
https://www.ncbi.nlm.nih.gov/pubmed/31790385
http://dx.doi.org/10.1371/journal.pgen.1008217
work_keys_str_mv AT reitzdiedre amutantformofdmc1thatbypassestherequirementforaccessoryproteinmei5sae3revealsindependentactivitiesofmei5sae3andrad51indmc1filamentstability
AT grubbjennifer amutantformofdmc1thatbypassestherequirementforaccessoryproteinmei5sae3revealsindependentactivitiesofmei5sae3andrad51indmc1filamentstability
AT bishopdouglask amutantformofdmc1thatbypassestherequirementforaccessoryproteinmei5sae3revealsindependentactivitiesofmei5sae3andrad51indmc1filamentstability
AT reitzdiedre mutantformofdmc1thatbypassestherequirementforaccessoryproteinmei5sae3revealsindependentactivitiesofmei5sae3andrad51indmc1filamentstability
AT grubbjennifer mutantformofdmc1thatbypassestherequirementforaccessoryproteinmei5sae3revealsindependentactivitiesofmei5sae3andrad51indmc1filamentstability
AT bishopdouglask mutantformofdmc1thatbypassestherequirementforaccessoryproteinmei5sae3revealsindependentactivitiesofmei5sae3andrad51indmc1filamentstability