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AAA-ATPase FIDGETIN-LIKE 1 and Helicase FANCM Antagonize Meiotic Crossovers by Distinct Mechanisms

Meiotic crossovers (COs) generate genetic diversity and are critical for the correct completion of meiosis in most species. Their occurrence is tightly constrained but the mechanisms underlying this limitation remain poorly understood. Here we identified the conserved AAA-ATPase FIDGETIN-LIKE-1 (FIG...

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Autores principales: Girard, Chloe, Chelysheva, Liudmila, Choinard, Sandrine, Froger, Nicole, Macaisne, Nicolas, Lehmemdi, Afef, Mazel, Julien, Crismani, Wayne, Mercier, Raphael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4498898/
https://www.ncbi.nlm.nih.gov/pubmed/26161528
http://dx.doi.org/10.1371/journal.pgen.1005369
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author Girard, Chloe
Chelysheva, Liudmila
Choinard, Sandrine
Froger, Nicole
Macaisne, Nicolas
Lehmemdi, Afef
Mazel, Julien
Crismani, Wayne
Mercier, Raphael
author_facet Girard, Chloe
Chelysheva, Liudmila
Choinard, Sandrine
Froger, Nicole
Macaisne, Nicolas
Lehmemdi, Afef
Mazel, Julien
Crismani, Wayne
Mercier, Raphael
author_sort Girard, Chloe
collection PubMed
description Meiotic crossovers (COs) generate genetic diversity and are critical for the correct completion of meiosis in most species. Their occurrence is tightly constrained but the mechanisms underlying this limitation remain poorly understood. Here we identified the conserved AAA-ATPase FIDGETIN-LIKE-1 (FIGL1) as a negative regulator of meiotic CO formation. We show that Arabidopsis FIGL1 limits CO formation genome-wide, that FIGL1 controls dynamics of the two conserved recombinases DMC1 and RAD51 and that FIGL1 hinders the interaction between homologous chromosomes, suggesting that FIGL1 counteracts DMC1/RAD51-mediated inter-homologue strand invasion to limit CO formation. Further, depleting both FIGL1 and the previously identified anti-CO helicase FANCM synergistically increases crossover frequency. Additionally, we showed that the effect of mutating FANCM on recombination is much lower in F1 hybrids contrasting from the phenotype of inbred lines, while figl1 mutation equally increases crossovers in both contexts. This shows that the modes of action of FIGL1 and FANCM are differently affected by genomic contexts. We propose that FIGL1 and FANCM represent two successive barriers to CO formation, one limiting strand invasion, the other disassembling D-loops to promote SDSA, which when both lifted, leads to a large increase of crossovers, without impairing meiotic progression.
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spelling pubmed-44988982015-07-17 AAA-ATPase FIDGETIN-LIKE 1 and Helicase FANCM Antagonize Meiotic Crossovers by Distinct Mechanisms Girard, Chloe Chelysheva, Liudmila Choinard, Sandrine Froger, Nicole Macaisne, Nicolas Lehmemdi, Afef Mazel, Julien Crismani, Wayne Mercier, Raphael PLoS Genet Research Article Meiotic crossovers (COs) generate genetic diversity and are critical for the correct completion of meiosis in most species. Their occurrence is tightly constrained but the mechanisms underlying this limitation remain poorly understood. Here we identified the conserved AAA-ATPase FIDGETIN-LIKE-1 (FIGL1) as a negative regulator of meiotic CO formation. We show that Arabidopsis FIGL1 limits CO formation genome-wide, that FIGL1 controls dynamics of the two conserved recombinases DMC1 and RAD51 and that FIGL1 hinders the interaction between homologous chromosomes, suggesting that FIGL1 counteracts DMC1/RAD51-mediated inter-homologue strand invasion to limit CO formation. Further, depleting both FIGL1 and the previously identified anti-CO helicase FANCM synergistically increases crossover frequency. Additionally, we showed that the effect of mutating FANCM on recombination is much lower in F1 hybrids contrasting from the phenotype of inbred lines, while figl1 mutation equally increases crossovers in both contexts. This shows that the modes of action of FIGL1 and FANCM are differently affected by genomic contexts. We propose that FIGL1 and FANCM represent two successive barriers to CO formation, one limiting strand invasion, the other disassembling D-loops to promote SDSA, which when both lifted, leads to a large increase of crossovers, without impairing meiotic progression. Public Library of Science 2015-07-10 /pmc/articles/PMC4498898/ /pubmed/26161528 http://dx.doi.org/10.1371/journal.pgen.1005369 Text en © 2015 Girard 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
Girard, Chloe
Chelysheva, Liudmila
Choinard, Sandrine
Froger, Nicole
Macaisne, Nicolas
Lehmemdi, Afef
Mazel, Julien
Crismani, Wayne
Mercier, Raphael
AAA-ATPase FIDGETIN-LIKE 1 and Helicase FANCM Antagonize Meiotic Crossovers by Distinct Mechanisms
title AAA-ATPase FIDGETIN-LIKE 1 and Helicase FANCM Antagonize Meiotic Crossovers by Distinct Mechanisms
title_full AAA-ATPase FIDGETIN-LIKE 1 and Helicase FANCM Antagonize Meiotic Crossovers by Distinct Mechanisms
title_fullStr AAA-ATPase FIDGETIN-LIKE 1 and Helicase FANCM Antagonize Meiotic Crossovers by Distinct Mechanisms
title_full_unstemmed AAA-ATPase FIDGETIN-LIKE 1 and Helicase FANCM Antagonize Meiotic Crossovers by Distinct Mechanisms
title_short AAA-ATPase FIDGETIN-LIKE 1 and Helicase FANCM Antagonize Meiotic Crossovers by Distinct Mechanisms
title_sort aaa-atpase fidgetin-like 1 and helicase fancm antagonize meiotic crossovers by distinct mechanisms
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4498898/
https://www.ncbi.nlm.nih.gov/pubmed/26161528
http://dx.doi.org/10.1371/journal.pgen.1005369
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