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在染色体轴上播种减数分裂 DNA 断裂机制并启动重组。

Seeding the meiotic DNA break machinery and initiating recombination on chromosome axes.

机构信息

Institute of Physiological Chemistry, Faculty of Medicine at the TU Dresden, Fiedlerstrasse 42, 01307, Dresden, Germany.

Molecular Biology Program, Memorial Sloan Kettering Cancer Center, New York, NY, 10065, USA.

出版信息

Nat Commun. 2024 Apr 5;15(1):2941. doi: 10.1038/s41467-024-47020-1.

Abstract

Programmed DNA double-strand break (DSB) formation is a crucial feature of meiosis in most organisms. DSBs initiate recombination-mediated linking of homologous chromosomes, which enables correct chromosome segregation in meiosis. DSBs are generated on chromosome axes by heterooligomeric focal clusters of DSB-factors. Whereas DNA-driven protein condensation is thought to assemble the DSB-machinery, its targeting to chromosome axes is poorly understood. We uncover in mice that efficient biogenesis of DSB-machinery clusters requires seeding by axial IHO1 platforms. Both IHO1 phosphorylation and formation of axial IHO1 platforms are diminished by chemical inhibition of DBF4-dependent kinase (DDK), suggesting that DDK contributes to the control of the axial DSB-machinery. Furthermore, we show that axial IHO1 platforms are based on an interaction between IHO1 and the chromosomal axis component HORMAD1. IHO1-HORMAD1-mediated seeding of the DSB-machinery on axes ensures sufficiency of DSBs for efficient pairing of homologous chromosomes. Without IHO1-HORMAD1 interaction, residual DSBs depend on ANKRD31, which enhances both the seeding and the growth of DSB-machinery clusters. Thus, recombination initiation is ensured by complementary pathways that differentially support seeding and growth of DSB-machinery clusters, thereby synergistically enabling DSB-machinery condensation on chromosomal axes.

摘要

程序性 DNA 双链断裂 (DSB) 的形成是大多数生物减数分裂的一个关键特征。DSB 启动同源染色体间重组介导的连接,从而使减数分裂中正确的染色体分离。DSB 由异源寡聚焦点簇的 DSB 因子在染色体轴上生成。虽然 DNA 驱动的蛋白质凝聚被认为是组装 DSB 机器的,但它在染色体轴上的靶向性知之甚少。我们在小鼠中发现,DSB 机器簇的有效生物发生需要轴向 IHO1 平台的种子。IHO1 的磷酸化和轴向 IHO1 平台的形成都因化学抑制 DBF4 依赖性激酶 (DDK) 而减少,这表明 DDK 有助于控制轴向 DSB 机器。此外,我们表明,轴向 IHO1 平台基于 IHO1 和染色体轴成分 HORMAD1 之间的相互作用。IHO1-HORMAD1 介导的 DSB 机器在轴上的播种确保了 DSB 足以有效配对同源染色体。没有 IHO1-HORMAD1 相互作用,残留的 DSB 依赖于 ANKRD31,它增强了 DSB 机器簇的播种和生长。因此,重组起始是通过互补途径确保的,这些途径差异支持 DSB 机器簇的播种和生长,从而协同地使 DSB 机器在染色体轴上凝聚。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fa2c/10997794/2596d39a1a1b/41467_2024_47020_Fig1_HTML.jpg

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