Feng Zhaohui, Hu Wenwei, Komissarova Elena, Pao Annie, Hung Mien-Chie, Adair Gerald M, Tang Moon-shong
Department of Environmental Medicine, Pathology and Medicine, New York University School of Medicine, Tuxedo, NY 10987, USA.
J Biol Chem. 2002 Apr 12;277(15):12777-83. doi: 10.1074/jbc.M112297200. Epub 2002 Jan 30.
DNA damage is preferentially repaired in the transcribed strand of many active genes. Although the concept of DNA repair coupled with transcription has been widely accepted, its mechanisms remain elusive. We recently reported that in Chinese hamster ovary cells while ultraviolet light-induced cyclobutane pyrimidine dimers (CPDs) are preferentially repaired in the transcribed strand of dihydrofolate reductase gene, CPDs are efficiently repaired in both strands of adenine phosphoribosyltransferase (APRT) locus, in either a transcribed or nontranscribed APRT gene (1). These results suggested that the transcription dependence of repair may depend on genomic context. To test this hypothesis, we constructed transfectant cell lines containing a single, actively transcribed APRT gene, integrated at different genomic sites. Mapping of CPD repair in the integrated APRT genes in three transfectant cell lines revealed two distinct repair patterns, either preferential repair of CPDs in the transcribed strand or very poor repair in both strands. Similar kinetics of micrococcal nuclease digestion were seen for all three transfectant APRT gene domains and endogenous APRT locus. Our results suggest that both the efficiency and strand-specificity of repair of an actively transcribed gene are profoundly affected by genomic context but do not reflect changes in first order nucleosomal structure.
DNA损伤在许多活跃基因的转录链中优先得到修复。尽管DNA修复与转录偶联的概念已被广泛接受,但其机制仍不清楚。我们最近报道,在中国仓鼠卵巢细胞中,紫外线诱导的环丁烷嘧啶二聚体(CPD)在二氢叶酸还原酶基因的转录链中优先得到修复,而在腺嘌呤磷酸核糖转移酶(APRT)基因座的两条链中,无论是转录的还是未转录的APRT基因,CPD都能得到有效修复(1)。这些结果表明,修复对转录的依赖性可能取决于基因组背景。为了验证这一假设,我们构建了转染细胞系,其中包含一个单一的、活跃转录的APRT基因,整合在不同的基因组位点。对三个转染细胞系中整合的APRT基因中的CPD修复进行定位,发现了两种不同的修复模式,即转录链中CPD的优先修复或两条链中修复很差。对于所有三个转染的APRT基因结构域和内源性APRT基因座,微球菌核酸酶消化的动力学相似。我们的结果表明,活跃转录基因的修复效率和链特异性都受到基因组背景的深刻影响,但并不反映一级核小体结构的变化。