Literature DB >> 32142707

Crossover Position Drives Chromosome Remodeling for Accurate Meiotic Chromosome Segregation.

Elisabeth Altendorfer1, Laura I Láscarez-Lagunas1, Saravanapriah Nadarajan1, Iain Mathieson1, Monica P Colaiácovo2.   

Abstract

Interhomolog crossovers (COs) are a prerequisite for achieving accurate chromosome segregation during meiosis [1, 2]. COs are not randomly positioned, occurring at distinct genomic intervals during meiosis in all species examined [3-10]. The role of CO position as a major determinant of accurate chromosome segregation has not been previously directly analyzed in a metazoan. Here, we use spo-11 mutants, which lack endogenous DNA double-strand breaks (DSBs), to induce a single DSB by Mos1 transposon excision at defined chromosomal locations in the C. elegans germline and show that the position of the resulting CO directly affects the formation of distinct chromosome subdomains during meiotic chromosome remodeling. CO formation in the typically CO-deprived center region of autosomes leads to premature loss of sister chromatid cohesion and chromosome missegregation, whereas COs at an off-centered position, as in wild type, can result in normal remodeling and accurate segregation. Ionizing radiation (IR)-induced DSBs lead to the same outcomes, and modeling of IR dose-response reveals that the CO-unfavorable center region encompasses up to 6% of the total chromosome length. DSBs proximal to telomeres rarely form COs, likely because of formation of unstable recombination intermediates that cannot be sustained as chiasmata until late prophase. Our work supports a model in which regulation of CO position early in meiotic prophase is required for proper designation of chromosome subdomains and normal chromosome remodeling in late meiotic prophase I, resulting in accurate chromosome segregation and providing a mechanism to prevent aneuploid gamete formation.
Copyright © 2020 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  C. elegans; DNA double-strand break; DNA repair; Mos1; chromosome remodeling; chromosome segregation; crossover; germline; meiosis

Year:  2020        PMID: 32142707      PMCID: PMC7162695          DOI: 10.1016/j.cub.2020.01.079

Source DB:  PubMed          Journal:  Curr Biol        ISSN: 0960-9822            Impact factor:   10.834


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