DNA连接酶
DNA修复
DNA复制
生物
分子生物学
体外重组
真核细胞DNA复制
DNA钳
DNA
生物化学
复制蛋白A
泛素连接酶
DNA聚合酶mu
DNA聚合酶δ
细胞生物学
基底切除修复术
dna连接酶
增殖细胞核抗原
非同源性末端接合
核苷酸切除修复
冈崎碎片
DNA合成
DNA修复蛋白XRCC4
聚合酶
同源重组
化学
作者
Xi Chen,Shijun Zhong,Xiao Zhu,Barbara Dziegielewska,Tom Ellenberger,Gerald M. Wilson,Alexander D. MacKerell,Alan E. Tomkinson
出处
期刊:Cancer Research
[American Association for Cancer Research]
日期:2008-05-01
卷期号:68 (9): 3169-3177
被引量:142
标识
DOI:10.1158/0008-5472.can-07-6636
摘要
Based on the crystal structure of human DNA ligase I complexed with nicked DNA, computer-aided drug design was used to identify compounds in a database of 1.5 million commercially available low molecular weight chemicals that were predicted to bind to a DNA-binding pocket within the DNA-binding domain of DNA ligase I, thereby inhibiting DNA joining. Ten of 192 candidates specifically inhibited purified human DNA ligase I. Notably, a subset of these compounds was also active against the other human DNA ligases. Three compounds that differed in their specificity for the three human DNA ligases were analyzed further. L82 inhibited DNA ligase I, L67 inhibited DNA ligases I and III, and L189 inhibited DNA ligases I, III, and IV in DNA joining assays with purified proteins and in cell extract assays of DNA replication, base excision repair, and nonhomologous end-joining. L67 and L189 are simple competitive inhibitors with respect to nicked DNA, whereas L82 is an uncompetitive inhibitor that stabilized complex formation between DNA ligase I and nicked DNA. In cell culture assays, L82 was cytostatic whereas L67 and L189 were cytotoxic. Concordant with their ability to inhibit DNA repair in vitro, subtoxic concentrations of L67 and L189 significantly increased the cytotoxicity of DNA-damaging agents. Interestingly, the ligase inhibitors specifically sensitized cancer cells to DNA damage. Thus, these novel human DNA ligase inhibitors will not only provide insights into the cellular function of these enzymes but also serve as lead compounds for the development of anticancer agents.
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