Laroche T, Martin S G, Gotta M, Gorham H C, Pryde F E, Louis E J, Gasser S M
Swiss Institute for Experimental Cancer Research, Chemin des Boveresses, Epalinges/Lausanne, Switzerland.
Curr Biol. 1998 May 21;8(11):653-6. doi: 10.1016/s0960-9822(98)70252-0.
The mammalian Ku70 and Ku86 proteins form a heterodimer that binds to the ends of double-stranded DNA in vitro and is required for repair of radiation-induced strand breaks and V(D)J recombination [1,2]. Deletion of the Saccharomyces cerevisiae genes HDF1 and HDF2--encoding yKu70p and yKu80p, respectively--enhances radiation sensitivity in a rad52 background [3,4]. In addition to repair defects, the length of the TG-rich repeat on yeast telomere ends shortens dramatically [5,6]. We have shown previously that in yeast interphase nuclei, telomeres are clustered in a limited number of foci near the nuclear periphery [7], but the elements that mediate this localization remained unknown. We report here that deletion of the genes encoding yKu70p or its partner yKu80p altered the positioning of telomeric DNA in the yeast nucleus. These are the first mutants shown to affect the subnuclear localization of telomeres. Strains deficient for either yKu70p or yKu80p lost telomeric silencing, although they maintained repression at the silent mating-type loci. In addition, the telomere-associated silencing factors Sir3p and Sir4p and the TG-repeat-binding protein Rap1p lost their punctate pattern of staining and became dispersed throughout the nucleoplasm. Our results implicate the yeast Ku proteins directly in aspects of telomere organization, which in turn affects the repression of telomere-proximal genes.
哺乳动物的Ku70和Ku86蛋白形成一种异源二聚体,该二聚体在体外可与双链DNA末端结合,是修复辐射诱导的链断裂和V(D)J重组所必需的[1,2]。分别编码yKu70p和yKu80p的酿酒酵母基因HDF1和HDF2的缺失,会增强rad52背景下的辐射敏感性[3,4]。除了修复缺陷外,酵母端粒末端富含TG的重复序列长度也会显著缩短[5,6]。我们之前已经表明,在酵母间期细胞核中,端粒聚集在核周边附近数量有限的焦点区域[7],但介导这种定位的元件仍不清楚。我们在此报告,编码yKu70p或其伙伴yKu80p的基因缺失会改变酵母细胞核中端粒DNA的定位。这些是首批被证明影响端粒亚核定位的突变体。缺乏yKu70p或yKu80p的菌株失去了端粒沉默,尽管它们在沉默的交配型位点维持了抑制作用。此外,端粒相关的沉默因子Sir3p和Sir4p以及TG重复序列结合蛋白Rap1p失去了点状染色模式,并分散在整个核质中。我们的结果表明酵母Ku蛋白直接参与端粒组织的某些方面,进而影响端粒近端基因的抑制。