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紫外线诱导的酵母着丝粒DNA损伤与修复

UV-induced damage and repair in centromere DNA of yeast.

作者信息

Resnick M A, Westmoreland J, Amaya E, Bloom K

机构信息

Cellular and Genetic Toxicology Branch, National Institute of Environmental Health Sciences, Research Triangle Park, NC 27709.

出版信息

Mol Gen Genet. 1987 Nov;210(1):16-22. doi: 10.1007/BF00337753.

Abstract

The centromere is the region within a chromosome that is required for proper segregation during mitosis and meiosis. Lesions in this sequence represent a unique type of damage, as loss of function could result in catastrophic loss of the genetic material of an entire chromosome. We have measured the induction by ultraviolet (UV) light of pyrimidine dimers in a 2550-bp restriction fragment that includes the centromere region of chromosome III in Saccharomyces cerevisiae. Yeast cells were exposed to ultraviolet light, cellular DNA was gently extracted, and subsequently treated with a UV-specific endonuclease to cleave all pyrimidine dimers. The sites of UV-specific nuclease scission within the centromere were determined by separating the DNA according to molecular weight, transferring the fragments to nitrocellulose, and hybridizing to a radiolabeled 624-bp fragment homologous to the centromere DNA from chromosome III. Several hotspots were identified in chromatin DNA from cells, as well as in irradiated deproteinized DNA. Double strand damage due to closely opposed pyrimidine dimers was also observed. At biological doses (35% survival) there are approximately 0.1 to 0.2 pyrimidine dimers per centromere. These dimers are efficiently repaired in the centromere and surrounding region.

摘要

着丝粒是染色体中的一个区域,在有丝分裂和减数分裂过程中,正确的染色体分离需要该区域。这个序列中的损伤代表了一种独特的损伤类型,因为功能丧失可能导致整条染色体的遗传物质灾难性丢失。我们测量了紫外线(UV)对酿酒酵母中包含第三条染色体着丝粒区域的2550碱基对限制片段中嘧啶二聚体的诱导作用。将酵母细胞暴露于紫外线下,轻柔提取细胞DNA,随后用一种紫外线特异性核酸内切酶处理以切割所有嘧啶二聚体。通过根据分子量分离DNA、将片段转移到硝酸纤维素膜上,并与与第三条染色体着丝粒DNA同源的放射性标记的624碱基对片段杂交,来确定着丝粒内紫外线特异性核酸酶切割的位点。在细胞的染色质DNA以及经辐照的脱蛋白DNA中都鉴定出了几个热点。还观察到由于紧密相邻的嘧啶二聚体导致的双链损伤。在生物剂量(35%存活率)下,每个着丝粒大约有0.1到0.2个嘧啶二聚体。这些二聚体在着丝粒及其周围区域能被有效修复。

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