首页> 美国卫生研究院文献>The Journal of Biological Chemistry >The Intra-S Phase Checkpoint Protein Tof1 Collaborates with the Helicase Rrm3 and the F-box Protein Dia2 to Maintain Genome Stability in Saccharomyces cerevisiae
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The Intra-S Phase Checkpoint Protein Tof1 Collaborates with the Helicase Rrm3 and the F-box Protein Dia2 to Maintain Genome Stability in Saccharomyces cerevisiae

机译:S内阶段检查点蛋白Tof1与解旋酶Rrm3和F-box蛋白Dia2协作以维持酿酒酵母的基因组稳定性

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摘要

The intra-S phase checkpoint protein complex Tof1/Csm3 of Saccharomyces cerevisiae antagonizes Rrm3 helicase to modulate replication fork arrest not only at the replication termini of rDNA but also at strong nonhistone protein binding sites throughout the genome. We investigated whether these checkpoint proteins acted either antagonistically or synergistically with Rrm3 in mediating other important functions such as maintenance of genome stability. High retromobility of a normally quiescent retrovirus-like transposable element Ty1 of S. cerevisiae is a form of genome instability, because the transposition events induce mutations. We measured the transposition of Ty1 in various genetic backgrounds and discovered that Tof1 suppressed excessive retromobility in collaboration with either Rrm3 or the F-box protein Dia2. Although both Rrm3 and Dia2 are believed to facilitate fork movement, fork stalling at DNA-protein complexes did not appear to be a major contributor to enhancement of retromobility. Absence of the aforementioned proteins either individually or in pair-wise combinations caused karyotype changes as revealed by the altered migrations of the individual chromosomes in pulsed field gels. The mobility changes were RNase H-resistant and therefore, unlikely to have been caused by extensive R loop formation. These mutations also resulted in alterations of telomere lengths. However, the latter changes could not fully account for the magnitude of the observed karyotypic alterations. We conclude that unlike other checkpoint proteins that are known to be required for elevated retromobility, Tof1 suppressed high frequency retrotransposition and maintained karyotype stability in collaboration with the aforementioned proteins.
机译:酿酒酵母的S阶段检查点蛋白复合物Tof1 / Csm3拮抗Rrm3解旋酶,不仅在rDNA的复制末端而且在整个基因组中的强非组蛋白结合位点均能调节复制叉停滞。我们调查了这些检查点蛋白在介导其他重要功能(例如维持基因组稳定性)方面是否与Rrm3拮抗或协同起作用。酿酒酵母通常静止的逆转录病毒样转座因子Ty1的高逆行性是基因组不稳定的一种形式,因为转座事件会引起突变。我们在各种遗传背景下测量了Ty1的转座,发现Tof1与Rrm3或F-box蛋白Dia2协同抑制了过度的逆行性。尽管人们认为Rrm3和Dia2都可以促进叉的运动,但DNA-蛋白质复合物的叉停滞似乎不是促进逆行性的主要因素。如脉冲场凝胶中单个染色体的迁移改变所揭示的,单独或成对组合的前述蛋白质的缺乏导致核型的改变。迁移率变化对RNase H具有抗性,因此,不可能由广泛的R环形成引起。这些突变还导致端粒长度的改变。但是,后一种变化不能完全说明观察到的核型变化的幅度。我们得出的结论是,与已知的提高逆行性所需的其他检查点蛋白不同,Tof1与上述蛋白协同作用可抑制高频逆转位并保持核型稳定性。

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