拓扑异构酶
DNA超螺旋
DNA连接酶
DNA
生物化学
酶
磷酸二酯键
大肠杆菌
DNA钳
生物
细菌圆形染色体
DNA聚合酶Ⅱ
分子生物学
体外重组
辅因子
DNA复制
化学
记录
DNA聚合酶
DNA修复
DNA损伤
真核细胞DNA复制
底漆(化妆品)
ATP水解
拓扑异构酶抑制剂
酶诱导剂
标识
DOI:10.1146/annurev.pa.34.040194.001203
摘要
INTRODUCTION In 1971, Wang (1) discovered the first DNA topoisomerase in Escherichia coli. The enzyme (E. coli DNA topoisomerase I, or w protein) catalyzed relaxation of negatively supercoiled DNA in the absence of any energy cofactor (1). Wang proposed that this enzyme also catalyzed transient nicking of the DNA double helix and possessed both DNase and ligase activity in one polypeptide (1). The lack of any energy cofactor for the reaction also led Wang to the proposal that the enzyme may form a high-energy covalent bond between itself and the transiently broken DNA phosphodiester bond (1). Both of these predictions have turned out to be correct (2). Since the discovery of E. coli topoisomerase I, investigators have isolated many other DNA topoisomerases from both prokaryotes and eukaryotes. In 1972, Champoux & Dulbecco isolated an enzyme with activity similar to that of E. coli topoisomerase I from mouse embryo cells (3). In 1976, Gellert and his colleagues identified an enzyme activity opposing E. coli DNA topoisomerase I (4). They demonstrated that this enzyme (E. coli DNA topoisomerase II, or gyrase) catalyzed the conversion of relaxed DNA into negatively supercoiled DNA in a reaction requiring ATP hydrolysis (4). These two opposing activities are important for maintaining the super helical state of the chromosomal DNA during various DNA transactions (5-8). In 1979, Liu et al (9) isolated an enzyme from bacteriophage
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