Department of Genetics, Blavatnik Institute, Harvard Medical School, 77 Avenue Louis Pasteur, Boston, MA 02115, USA.
Department of Genetics, Blavatnik Institute, Harvard Medical School, 77 Avenue Louis Pasteur, Boston, MA 02115, USA.
Curr Biol. 2020 Apr 6;30(7):1329-1338.e7. doi: 10.1016/j.cub.2020.01.079. Epub 2020 Mar 5.
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.
同源重组交叉(COs)是减数分裂过程中实现染色体正确分离的前提条件[1,2]。CO 并非随机定位,在所有已研究的物种中,减数分裂期间都在特定的基因组间隔发生[3-10]。CO 位置作为准确染色体分离的主要决定因素的作用,在后生动物中尚未被直接分析过。在这里,我们利用缺乏内源性 DNA 双链断裂(DSBs)的 spo-11 突变体,通过 Mos1 转座子在 C. elegans 生殖细胞中的特定染色体位置的切除来诱导单个 DSB,并表明由此产生的 CO 的位置直接影响减数分裂染色体重塑过程中不同染色体亚区的形成。在通常缺乏 CO 的常染色体中心区域形成 CO 会导致姐妹染色单体的过早丧失和染色体错误分离,而在偏离中心的位置形成 CO,如在野生型中,则可以导致正常的重塑和准确的分离。电离辐射(IR)诱导的 DSBs 也会导致同样的结果,IR 剂量反应的建模表明 CO 不利的中心区域包含多达 6%的总染色体长度。靠近端粒的 DSBs 很少形成 CO,可能是因为形成了不稳定的重组中间体,在前期后期不能维持为交叉。我们的工作支持这样一种模型,即在减数分裂前期早期,CO 位置的调节对于正确指定染色体亚区和后期减数分裂前期 I 中的正常染色体重塑是必需的,从而导致染色体的准确分离,并提供了一种防止非整倍体配子形成的机制。