Sgs1、DNA损伤检查点组分和DNA修复因子在维持染色体稳定性中的差异遗传相互作用。

Q4 Biochemistry, Genetics and Molecular Biology Genome Integrity Pub Date : 2011-10-31 DOI:10.1186/2041-9414-2-8
Lillian Doerfler, Lorena Harris, Emilie Viebranz, Kristina H Schmidt
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引用次数: 9

摘要

背景:基因组不稳定与人类癌症和染色体断裂综合征(包括BLM解旋酶失活引起的Bloom综合征)有关。许多导致基因组不稳定的突变是已知的,但它们如何在基因上相互作用却知之甚少。结果:我们发现,在缺乏blm相关的Sgs1解旋酶(sgs1Δ mec3Δ)的dna损伤检查点缺陷酵母中,如果细胞缺乏Mec1/ATR激酶,由非等位基因同源重组引起的自发易位会受到抑制。相反,Tel1/ATM作为独立于Mec3和Sgs1的抑制因子。易位在缺乏Dun1激酶的细胞中也受到抑制,但在Chk1激酶定义的平行检查点分支缺陷的细胞中则不受抑制。虽然我们之前已经证明RAD51缺失不抑制易位形成,但RAD59缺失导致的抑制与rad52Δ突变相当。其他DNA代谢因子的候选筛选发现,Exo1在sgs1Δ突变体中是染色体重排的强抑制因子,在MEC3缺失后对染色体稳定性变得更加重要。研究人员发现,包含错配修复蛋白结合位点和磷酸化位点的Exo1的c端三分之一对于Exo1在抑制染色体重排、避免突变和抵抗dna损伤剂中的作用是必不可少的。结论:相关基因之间的易位可以通过rad51依赖性、非rad51依赖性的同源重组形成,这种重组被Sgs1、Tel1、Mec3和Exo1独立抑制,而被Dun1和端粒酶抑制剂Mec1促进。我们提出了一个有丝分裂重组和dna损伤检查点在抑制sgs1Δ细胞染色体重排中的功能相互作用模型。
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Differential genetic interactions between Sgs1, DNA-damage checkpoint components and DNA repair factors in the maintenance of chromosome stability.

Background: Genome instability is associated with human cancers and chromosome breakage syndromes, including Bloom's syndrome, caused by inactivation of BLM helicase. Numerous mutations that lead to genome instability are known, yet how they interact genetically is poorly understood.

Results: We show that spontaneous translocations that arise by nonallelic homologous recombination in DNA-damage-checkpoint-defective yeast lacking the BLM-related Sgs1 helicase (sgs1Δ mec3Δ) are inhibited if cells lack Mec1/ATR kinase. Tel1/ATM, in contrast, acts as a suppressor independently of Mec3 and Sgs1. Translocations are also inhibited in cells lacking Dun1 kinase, but not in cells defective in a parallel checkpoint branch defined by Chk1 kinase. While we had previously shown that RAD51 deletion did not inhibit translocation formation, RAD59 deletion led to inhibition comparable to the rad52Δ mutation. A candidate screen of other DNA metabolic factors identified Exo1 as a strong suppressor of chromosomal rearrangements in the sgs1Δ mutant, becoming even more important for chromosomal stability upon MEC3 deletion. We determined that the C-terminal third of Exo1, harboring mismatch repair protein binding sites and phosphorylation sites, is dispensable for Exo1's roles in chromosomal rearrangement suppression, mutation avoidance and resistance to DNA-damaging agents.

Conclusions: Our findings suggest that translocations between related genes can form by Rad59-dependent, Rad51-independent homologous recombination, which is independently suppressed by Sgs1, Tel1, Mec3 and Exo1 but promoted by Dun1 and the telomerase-inhibitor Mec1. We propose a model for the functional interaction between mitotic recombination and the DNA-damage checkpoint in the suppression of chromosomal rearrangements in sgs1Δ cells.

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Genome Integrity
Genome Integrity Biochemistry, Genetics and Molecular Biology-Genetics
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