Lo Yi-Chen, Paffett Kimberly S, Amit Or, Clikeman Jennifer A, Sterk Rosa, Brenneman Mark A, Nickoloff Jac A
Department of Molecular Genetics and Microbiology, University of New Mexico School of Medicine, Albuquerque, NM 87131, USA.
Mol Cell Biol. 2006 Jun;26(11):4086-94. doi: 10.1128/MCB.00136-06.
RecQ helicases maintain genome stability and suppress tumors in higher eukaryotes through roles in replication and DNA repair. The yeast RecQ homolog Sgs1 interacts with Top3 topoisomerase and Rmi1. In vitro, Sgs1 binds to and branch migrates Holliday junctions (HJs) and the human RecQ homolog BLM, with Top3alpha, resolves synthetic double HJs in a noncrossover sense. Sgs1 suppresses crossovers during the homologous recombination (HR) repair of DNA double-strand breaks (DSBs). Crossovers are associated with long gene conversion tracts, suggesting a model in which Sgs1 helicase catalyzes reverse branch migration and convergence of double HJs for noncrossover resolution by Top3. Consistent with this model, we show that allelic crossovers and gene conversion tract lengths are increased in sgs1Delta. However, crossover and tract length suppression was independent of Sgs1 helicase activity, which argues against helicase-dependent HJ convergence. HJs may converge passively by a "random walk," and Sgs1 may play a structural role in stimulating Top3-dependent resolution. In addition to the new helicase-independent functions for Sgs1 in crossover and tract length control, we define three new helicase-dependent functions, including the suppression of chromosome loss, chromosome missegregation, and synthetic lethality in srs2Delta. We propose that Sgs1 has helicase-dependent functions in replication and helicase-independent functions in DSB repair by HR.
RecQ解旋酶通过在复制和DNA修复中的作用维持高等真核生物的基因组稳定性并抑制肿瘤。酵母RecQ同源物Sgs1与Top3拓扑异构酶和Rmi1相互作用。在体外,Sgs1结合并使霍利迪连接(HJs)发生分支迁移,而人类RecQ同源物BLM与Top3α一起以非交叉方式解析合成双HJs。Sgs1在DNA双链断裂(DSBs)的同源重组(HR)修复过程中抑制交叉。交叉与长基因转换片段相关,这提示了一种模型,即Sgs1解旋酶催化双HJs的反向分支迁移和汇聚,以便由Top3进行非交叉解析。与该模型一致,我们发现sgs1Δ中基因座间交叉和基因转换片段长度增加。然而,交叉和片段长度抑制与Sgs1解旋酶活性无关,这与解旋酶依赖性HJ汇聚的观点相悖。HJs可能通过“随机游走”被动汇聚,而Sgs1可能在刺激Top3依赖性解析中发挥结构作用。除了Sgs1在交叉和片段长度控制中具有新的非解旋酶依赖性功能外,我们还定义了三种新的解旋酶依赖性功能,包括抑制srs2Δ中的染色体丢失、染色体错分离和合成致死性。我们提出Sgs1在复制中具有解旋酶依赖性功能,而在HR介导的DSB修复中具有非解旋酶依赖性功能。