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同源模板偏向和稳健的内稳态调节中 Rad51-Dmc1 的协同作用对减数分裂交叉控制。

Meiotic crossover control by concerted action of Rad51-Dmc1 in homolog template bias and robust homeostatic regulation.

机构信息

Howard Hughes Medical Institute and Department of Microbiology & Molecular Genetics, University of California, Davis, Davis, California, United States of America ; Genetics Graduate Group, University of California, Davis, Davis, California, United States of America.

Committee on Genetics, University of Chicago, Cummings Life Science Center, Chicago, Illinois, United States of America ; Department of Radiation and Cellular Oncology, University of Chicago, Cummings Life Science Center, Chicago, Illinois, United States of America.

出版信息

PLoS Genet. 2013;9(12):e1003978. doi: 10.1371/journal.pgen.1003978. Epub 2013 Dec 19.

Abstract

During meiosis, repair of programmed DNA double-strand breaks (DSBs) by recombination promotes pairing of homologous chromosomes and their connection by crossovers. Two DNA strand-exchange proteins, Rad51 and Dmc1, are required for meiotic recombination in many organisms. Studies in budding yeast imply that Rad51 acts to regulate Dmc1's strand exchange activity, while its own exchange activity is inhibited. However, in a dmc1 mutant, elimination of inhibitory factor, Hed1, activates Rad51's strand exchange activity and results in high levels of recombination without participation of Dmc1. Here we show that Rad51-mediated meiotic recombination is not subject to regulatory processes associated with high-fidelity chromosome segregation. These include homolog bias, a process that directs strand exchange between homologs rather than sister chromatids. Furthermore, activation of Rad51 does not effectively substitute for Dmc1's chromosome pairing activity, nor does it ensure formation of the obligate crossovers required for accurate homolog segregation. We further show that Dmc1's dominance in promoting strand exchange between homologs involves repression of Rad51's strand-exchange activity. This function of Dmc1 is independent of Hed1, but requires the meiotic kinase, Mek1. Hed1 makes a relatively minor contribution to homolog bias, but nonetheless this is important for normal morphogenesis of synaptonemal complexes and efficient crossing-over especially when DSB numbers are decreased. Super-resolution microscopy shows that Dmc1 also acts to organize discrete complexes of a Mek1 partner protein, Red1, into clusters along lateral elements of synaptonemal complexes; this activity may also contribute to homolog bias. Finally, we show that when interhomolog bias is defective, recombination is buffered by two feedback processes, one that increases the fraction of events that yields crossovers, and a second that we propose involves additional DSB formation in response to defective homolog interactions. Thus, robust crossover homeostasis is conferred by integrated regulation at initiation, strand-exchange and maturation steps of meiotic recombination.

摘要

在减数分裂过程中,通过重组修复程序性 DNA 双链断裂(DSB)可促进同源染色体的配对及其通过交叉连接。在许多生物体中,两种 DNA 链交换蛋白 Rad51 和 Dmc1 是减数分裂重组所必需的。芽殖酵母的研究表明,Rad51 作用于调节 Dmc1 的链交换活性,而其自身的交换活性受到抑制。然而,在 dmc1 突变体中,消除抑制因子 Hed1 会激活 Rad51 的链交换活性,并导致高水平的重组,而无需 Dmc1 的参与。在这里,我们表明 Rad51 介导的减数分裂重组不受与高保真染色体分离相关的调节过程的影响。这些过程包括同源偏爱,这是一种将链交换引导到同源体而不是姐妹染色单体之间的过程。此外,Rad51 的激活不能有效地替代 Dmc1 的染色体配对活性,也不能确保形成准确的同源体分离所需的必需交叉。我们进一步表明,Dmc1 促进同源体之间链交换的优势涉及抑制 Rad51 的链交换活性。Dmc1 的这种功能独立于 Hed1,但需要有丝分裂激酶 Mek1。Hed1 对同源偏爱只做了相对较小的贡献,但对联会复合体的正常形态发生和有效的交叉尤其是在 DSB 数量减少时非常重要。超分辨率显微镜显示,Dmc1 还作用于 Mek1 的伴侣蛋白 Red1 的离散复合物,将其组织成联会复合体的侧元件上的簇;这种活性也可能有助于同源偏爱。最后,我们表明,当同源偏爱有缺陷时,重组通过两个反馈过程得到缓冲,一个过程增加了产生交叉的事件的比例,另一个过程我们提出涉及对有缺陷的同源体相互作用的额外 DSB 形成。因此,通过对减数分裂重组起始、链交换和成熟步骤的综合调控,实现了稳健的交叉平衡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31c8/3868528/d4a8981e0114/pgen.1003978.g001.jpg

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