The conserved ATPase PCH-2 controls the number and distribution of crossovers by antagonizing their formation in C. elegans.

Bhumil Patel, Maryke Grobler, Alberto Herrera, Elias Logari, Valery Ortiz, Needhi Bhalla
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Abstract

Meiotic crossover recombination is essential for both accurate chromosome segregation and the generation of new haplotypes for natural selection to act upon. This requirement is known as crossover assurance and is one example of crossover control. While the conserved role of the ATPase, PCH-2, during meiotic prophase has been enigmatic, a universal phenotype when pch-2 or its orthologs are mutated is a change in the number and distribution of meiotic crossovers. Here, we show that PCH-2 controls the number and distribution of crossovers by antagonizing their formation. This antagonism produces different effects at different stages of meiotic prophase: early in meiotic prophase, PCH-2 prevents double strand breaks from becoming crossover-eligible intermediates, limiting crossover formation at sites of initial double strand break formation and homolog interactions. Later in meiotic prophase, PCH-2 winnows the number of crossover-eligible intermediates, contributing to the designation of crossovers and ultimately, crossover assurance. We also demonstrate that PCH-2 accomplishes this regulation through the meiotic HORMAD, HIM-3. Our data strongly support a model in which PCH-2's conserved role is to remodel meiotic HORMADs throughout meiotic prophase to destabilize crossover-eligible precursors, coordinate meiotic recombination with synapsis, and contribute to the progressive implementation of meiotic recombination, guaranteeing crossover control.

保守的 ATP 酶 PCH-2 通过拮抗优雅子体内交叉点的形成来控制交叉点的数量和分布。
减数分裂过程中的交叉重组对于染色体的准确分离和产生新的单倍型供自然选择至关重要。ATP酶PCH-2在减数分裂前期的保守作用一直是个谜,但当PCH-2或其直向异构体发生突变时,观察到的一个普遍表型是减数分裂交叉的数量和分布发生了变化。在这里,我们发现 PCH-2 通过拮抗交叉形成来控制交叉的数量和分布。这种拮抗作用在减数分裂原期的不同阶段产生不同的效果:在减数分裂原期的早期,PCH-2能防止双链断裂成为交叉点,从而限制了最初DSB形成部位和同源物相互作用部位的交叉。在减数分裂前期的后期,PCH-2 会减少符合交叉条件的中间产物的数量,从而有助于强化符合交叉条件的中间产物、指定交叉点并最终确保交叉。我们还证明,PCH-2 是通过减数分裂 HORMAD(HIM-3)实现这一调节的。我们的数据有力地支持了这样一个模型,即 PCH-2 的保守作用是在整个减数分裂前期重塑减数分裂 HORMAD,以破坏具有交叉资格的前体的稳定性,协调减数分裂重组与突触,并促进减数分裂重组的逐步实施,保证交叉控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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