Université Paris-Saclay, Commissariat à l'Énergie Atomique et aux Énergies Alternatives (CEA), Centre National de la Recherche Scientifique (CNRS), Institute for Integrative Biology of the Cell (I2BC), Gif-sur-Yvette, France.
Centre de Biologie Intégrative, Molecular, Cellular & Developmental Biology Unit, Université Fédérale de Toulouse, Toulouse, France.
PLoS Biol. 2024 Jul 1;22(7):e3002705. doi: 10.1371/journal.pbio.3002705. eCollection 2024 Jul.
We show here that in the fungus Sordaria macrospora, the meiosis-specific HORMA-domain protein Hop1 is not essential for the basic early events of chromosome axis development, recombination initiation, or recombination-mediated homolog coalignment/pairing. In striking contrast, Hop1 plays a critical role at the leptotene/zygotene transition which is defined by transition from pairing to synaptonemal complex (SC) formation. During this transition, Hop1 is required for maintenance of normal axis structure, formation of SC from telomere to telomere, and development of recombination foci. These hop1Δ mutant defects are DSB dependent and require Sme4/Zip1-mediated progression of the interhomolog interaction program, potentially via a pre-SC role. The same phenotype occurs not only in hop1Δ but also in absence of the cohesin Rec8 and in spo76-1, a non-null mutant of cohesin-associated Spo76/Pds5. Thus, Hop1 and cohesins collaborate at this crucial step of meiotic prophase. In addition, analysis of 4 non-null mutants that lack this transition defect reveals that Hop1 also plays important roles in modulation of axis length, homolog-axis juxtaposition, interlock resolution, and spreading of the crossover interference signal. Finally, unexpected variations in crossover density point to the existence of effects that both enhance and limit crossover formation. Links to previously described roles of the protein in other organisms are discussed.
我们在此表明,在真菌 Sordaria macrospora 中,减数分裂特异性 HORMA 结构域蛋白 Hop1 对于染色体轴发育、重组起始或重组介导的同源物并列/配对的基本早期事件并非必需。相比之下,Hop1 在细线期/合线期转变中起着关键作用,这一转变的定义是配对向联会复合体 (SC) 形成的转变。在此转变过程中,Hop1 需要维持正常的轴结构、从端粒到端粒形成 SC 以及重组焦点的发育。这些 hop1Δ 突变体缺陷是 DSB 依赖性的,需要 Sme4/Zip1 介导的同源物相互作用程序的进展,可能通过预 SC 作用。不仅 hop1Δ 缺失,而且缺乏着丝粒蛋白 Rec8 和非 null 突变体 Spo76/Pds5 相关的 cohesin 相关蛋白 Spo76 的缺失也会出现相同的表型。因此,Hop1 和着丝粒蛋白在减数分裂前期的这个关键步骤中协同作用。此外,对缺乏这种转变缺陷的 4 个非 null 突变体的分析表明,Hop1 还在调节轴长、同源物轴并列、联锁解决以及交叉干扰信号的扩展方面发挥重要作用。最后,交叉密度的意外变化表明存在增强和限制交叉形成的影响。还讨论了该蛋白在其他生物体中以前描述的作用之间的联系。