Double-strand-break-induced homologous recombination in mammalian cells

同源重组 同源染色体 非同源性末端接合 生物 姐妹染色单体 同源定向修复 遗传学 DNA修复 分支迁移 非等位同源重组 RAD52 DNA 雷达51 基因 遗传重组 染色体 重组 DNA错配修复 霍利迪路口
作者
Roger D. Johnson,Maria Jasin
出处
期刊:Biochemical Society Transactions [Portland Press]
卷期号:29 (2): 196-196 被引量:261
标识
DOI:10.1042/0300-5127:0290196
摘要

In mammalian cells, the repair of DNA double-strand breaks (DSBs) occurs by both homologous and non-homologous mechanisms. Indirect evidence, including that from gene targeting and random integration experiments, had suggested that non-homologous mechanisms were significantly more frequent than homologous ones. However, more recent experiments indicate that homologous recombination is also a prominent DSB repair pathway. These experiments show that mammalian cells use homologous sequences located at multiple positions throughout the genome to repair a DSB. However, template preference appears to be biased, with the sister chromatid being preferred by 2–3 orders of magnitude over a homologous or heterologous chromosome. The outcome of homologous recombination in mammalian cells is predominantly gene conversion that is not associated with crossing-over. The preference for the sister chromatid and the bias against crossing-over seen in mitotic mammalian cells may have developed in order to reduce the potential for genome alterations that could occur when other homologous repair templates are utilized. In attempts to understand further the mechanism of homologous recombination, the proteins that promote this process are beginning to be identified. To date, four mammalian proteins have been demonstrated conclusively to be involved in DSB repair by homologous recombination: Rad54, XRCC2, XRCC3 and BRCAI. This paper summarizes results from a number of recent studies.
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