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Loss of Sin3/Rpd3 Histone Deacetylase Restores the DNA Damage Response in Checkpoint-Deficient Strains of Saccharomyces cerevisiae

机译:Sin3 / Rpd3组蛋白脱乙酰基酶的损失恢复酿酒酵母检查点缺陷菌株中的DNA损伤反应。

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We previously reported that expression of the human forkhead/winged helix transcription factor, CHES1 (checkpoint suppressor 1; FOXN3), suppresses sensitivity to DNA damage and restores damage-induced G2/M arrest in checkpoint-deficient strains of Saccharomyces cerevisiae. We find that a functional glutathione S-transferase-Ches1 fusion protein binds in vivo to Sin3, a component of the S. cerevisiae Sin3/Rpd3 histone deacetylase complex. Checkpoint mutant strains with SIN3 deleted show increased resistance to UV irradiation, which is not further enhanced by CHES1 expression. Conversely, overexpression of SIN3 blocks the Ches1-mediated G2/M delay in response to DNA damage, which is consistent with Ches1 acting by inhibiting the Sin3/Rpd3 complex. Deletion of either SIN3 or RPD3 in rad9 or mec1 checkpoint mutant strains suppresses sensitivity to replication blocks and DNA damage resulting from Cdc9 ligase deficiency and UV irradiation. SIN3 or RPD3 deletions also restored G2/M arrest after DNA damage without concomitant Rad53 phosphorylation in mec1 mutant strains. This DNA damage response is absent in mad1 spindle checkpoint mutants. These data suggest that modulation of chromatin structure may regulate checkpoint responses in S. cerevisiae. Inhibition of histone deacetylation results in a DNA damage checkpoint response mediated by the spindle checkpoint pathway that compensates for loss of the primary DNA damage checkpoint pathway.
机译:我们之前曾报道过人类叉头/翅螺旋转录因子 CHES1 (检查点抑制剂1; FOXN3)的表达可抑制对DNA损伤的敏感性并恢复损伤诱导的G 2 酵母菌检查点缺陷菌株的/ M逮捕。我们发现功能性谷胱甘肽 S -转移酶-Ches1融合蛋白在体内与Sin3( S的组成部分)结合。 Sin3 / Rpd3组蛋白脱乙酰基酶复合物。删除了 SIN3 的Checkpoint突变株显示出对紫外线辐射的抗性增强,而 CHES1 的表达并没有进一步增强。相反, SIN3 的过表达阻止了Ches1介导的对DNA损伤的G 2 / M延迟,这与Ches1通过抑制Sin3 / Rpd3复合体起作用有关。在 rad9 mec1 检查点突变株中删除 SIN3 RPD3 会抑制对复制阻滞的敏感性并导致DNA损伤来自Cdc9连接酶缺乏症和紫外线照射。 DNA损伤后, SIN3 RPD3 缺失也恢复了G 2 / M停滞,而在 mec1 突变株中没有Rad53磷酸化。在 mad1 纺锤体检查点突变体中不存在这种DNA损伤反应。这些数据表明,染色质结构的调节可以调节 S中的检查点响应。啤酒酵母。组蛋白去乙酰基化的抑制导致纺锤体检查点途径介导的DNA损伤检查点反应,补偿了主要DNA损伤检查点途径的损失。

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