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亚端粒重复序列扩增与酿酒酵母yku70突变体在高温下的生长相关。

Subtelomeric repeat amplification is associated with growth at elevated temperature in yku70 mutants of Saccharomyces cerevisiae.

作者信息

Fellerhoff B, Eckardt-Schupp F, Friedl A A

机构信息

GSF-Forschungszentrum, Institut für Strahlenbiologie, 85758 Oberschleissheim, Germany.

出版信息

Genetics. 2000 Mar;154(3):1039-51. doi: 10.1093/genetics/154.3.1039.

Abstract

Inactivation of the Saccharomyces cerevisiae gene YKU70 (HDF1), which encodes one subunit of the Ku heterodimer, confers a DNA double-strand break repair defect, shortening of and structural alterations in the telomeres, and a severe growth defect at 37 degrees. To elucidate the basis of the temperature sensitivity, we analyzed subclones derived from rare yku70 mutant cells that formed a colony when plated at elevated temperature. In all these temperature-resistant subclones, but not in cell populations shifted to 37 degrees, we observed substantial amplification and redistribution of subtelomeric Y' element DNA. Amplification of Y' elements and adjacent telomeric sequences has been described as an alternative pathway for chromosome end stabilization that is used by postsenescence survivors of mutants deficient for the telomerase pathway. Our data suggest that the combination of Ku deficiency and elevated temperature induces a potentially lethal alteration of telomere structure or function. Both in yku70 mutants and in wild type, incubation at 37 degrees results in a slight reduction of the mean length of terminal restriction fragments, but not in a significant loss of telomeric (C(1-3)A/TG(1-3))(n) sequences. We propose that the absence of Ku, which is known to bind to telomeres, affects the telomeric chromatin so that its chromosome end-defining function is lost at 37 degrees.

摘要

酿酒酵母基因YKU70(HDF1)编码Ku异源二聚体的一个亚基,该基因的失活会导致DNA双链断裂修复缺陷、端粒缩短和结构改变,以及在37℃时出现严重的生长缺陷。为了阐明温度敏感性的基础,我们分析了从罕见的yku70突变细胞衍生而来的亚克隆,这些细胞在高温平板培养时形成了菌落。在所有这些耐温亚克隆中,而非在转移到37℃的细胞群体中,我们观察到亚端粒Y'元件DNA的大量扩增和重新分布。Y'元件和相邻端粒序列的扩增已被描述为染色体末端稳定的一种替代途径,端粒酶途径缺陷的突变体的衰老后存活细胞会使用该途径。我们的数据表明,Ku缺陷和高温的组合会诱导端粒结构或功能发生潜在的致命改变。在yku70突变体和野生型中,37℃孵育都会导致末端限制片段的平均长度略有缩短,但不会导致端粒(C(1-3)A/TG(1-3))(n)序列的显著丢失。我们提出,已知与端粒结合的Ku的缺失会影响端粒染色质,使其在37℃时丧失染色体末端定义功能。

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