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DNA损伤引发端粒沉默的破坏以及Sir3p的Mec1p依赖性重新定位。

DNA damage triggers disruption of telomeric silencing and Mec1p-dependent relocation of Sir3p.

作者信息

McAinsh A D, Scott-Drew S, Murray J A, Jackson S P

机构信息

Wellcome Trust/Cancer Research Campaign Institute, Department of Zoology, University of Cambridge, Tennis Court Road, Cambridge, CB2 1QR, UK.

出版信息

Curr Biol. 1999 Sep 9;9(17):963-6. doi: 10.1016/s0960-9822(99)80424-2.

Abstract

In eukaryotic cells, surveillance mechanisms detect and respond to DNA damage by triggering cell-cycle arrest and inducing the expression of DNA-repair genes [1]. In budding yeast, a single DNA double-strand break (DSB) is sufficient to trigger cell-cycle arrest [2]. One highly conserved pathway for repairing DNA DSBs is DNA non-homologous end-joining (NHEJ), which depends on the DNA end-binding protein Ku [3]. NHEJ also requires the SIR2, SIR3 and SIR4 gene products [4] [5], which are responsible for silencing at telomeres and the mating-type loci [6]. Because of the link between NHEJ and the Sir proteins, we investigated whether DNA damage influences telomeric silencing. We found that DNA damage triggers the reversible loss of telomeric silencing and relocation of Sir3p from telomeres. Complete Sir3p relocation was triggered by a single DNA DSB, suggesting that the singal is amplified. Consistent with this idea, Sir3p relocation depended on the DNA damage-signalling components Ddc1p and Mec1p. Thus, signalling of DNA damage may release Sir3p from telomeres and permit its subsequent association with other nuclear subdomains to regulate transcription, participate in DNA repair and/or enhance genomic stability by other mechanisms.

摘要

在真核细胞中,监测机制通过触发细胞周期停滞和诱导DNA修复基因的表达来检测和应对DNA损伤[1]。在芽殖酵母中,单个DNA双链断裂(DSB)足以触发细胞周期停滞[2]。一种高度保守的修复DNA DSB的途径是DNA非同源末端连接(NHEJ),它依赖于DNA末端结合蛋白Ku[3]。NHEJ还需要SIR2、SIR3和SIR4基因产物[4][5],这些产物负责端粒和交配型位点的沉默[6]。由于NHEJ与Sir蛋白之间的联系,我们研究了DNA损伤是否会影响端粒沉默。我们发现DNA损伤会触发端粒沉默的可逆丧失以及Sir3p从端粒的重新定位。单个DNA DSB会触发Sir3p的完全重新定位,这表明信号被放大。与此观点一致,Sir3p的重新定位依赖于DNA损伤信号传导成分Ddc1p和Mec1p。因此,DNA损伤信号传导可能会使Sir3p从端粒释放,并允许其随后与其他核亚结构域结合,从而通过其他机制调节转录、参与DNA修复和/或增强基因组稳定性。

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