Hunt Laura J, Ahmed Emad A, Kaur Hardeep, Ahuja Jasvinder S, Hulme Lydia, Chou Ta-Chung, Lichten Michael, Goldman Alastair S H
Department of Molecular Biology and Biotechnology, The University of Sheffield, Sheffield, S10 2TN, UK.
Genome Damage and Stability Centre, School of Life Sciences, University of Sussex, Brighton, BN1 9RQ, UK.
Chromosoma. 2019 Sep;128(3):249-265. doi: 10.1007/s00412-019-00705-9. Epub 2019 May 9.
We investigated the meiotic role of Srs2, a multi-functional DNA helicase/translocase that destabilises Rad51-DNA filaments and is thought to regulate strand invasion and prevent hyper-recombination during the mitotic cell cycle. We find that Srs2 activity is required for normal meiotic progression and spore viability. A significant fraction of srs2 mutant cells progress through both meiotic divisions without separating the bulk of their chromatin, although in such cells sister centromeres often separate. Undivided nuclei contain aggregates of Rad51 colocalised with the ssDNA-binding protein RPA, suggesting the presence of persistent single-strand DNA. Rad51 aggregate formation requires Spo11-induced DSBs, Rad51 strand-invasion activity and progression past the pachytene stage of meiosis, but not the DSB end-resection or the bias towards interhomologue strand invasion characteristic of normal meiosis. srs2 mutants also display altered meiotic recombination intermediate metabolism, revealed by defects in the formation of stable joint molecules. We suggest that Srs2, by limiting Rad51 accumulation on DNA, prevents the formation of aberrant recombination intermediates that otherwise would persist and interfere with normal chromosome segregation and nuclear division.
我们研究了Srs2的减数分裂作用,Srs2是一种多功能DNA解旋酶/转位酶,可使Rad51-DNA细丝不稳定,并被认为在有丝分裂细胞周期中调节链侵入并防止过度重组。我们发现Srs2活性是正常减数分裂进程和孢子活力所必需的。相当一部分srs2突变体细胞在不分离大部分染色质的情况下完成两次减数分裂,尽管在这些细胞中姐妹着丝粒常常分离。未分裂的细胞核含有与单链DNA结合蛋白RPA共定位的Rad51聚集体,表明存在持续的单链DNA。Rad51聚集体的形成需要Spo11诱导的双链断裂、Rad51链侵入活性以及减数分裂粗线期之后的进程,但不需要双链断裂末端切除或正常减数分裂中同源链侵入的偏向性。srs2突变体还表现出减数分裂重组中间体代谢的改变,这通过稳定连接分子形成的缺陷得以揭示。我们认为,Srs2通过限制Rad51在DNA上的积累,防止形成异常的重组中间体,否则这些中间体将持续存在并干扰正常的染色体分离和核分裂。