D'Annessa Ilda, Tesauro Cinzia, Fiorani Paola, Chillemi Giovanni, Castelli Silvia, Vassallo Oscar, Capranico Giovanni, Desideri Alessandro
National Research Council (CNR) and Department of Biology, University of Rome Tor Vergata, Via Della Ricerca Scientifica, Rome 00133, Italy.
J Amino Acids. 2012;2012:206083. doi: 10.1155/2012/206083. Epub 2012 Jan 19.
Topoisomerases I are ubiquitous enzymes that control DNA topology within the cell. They are the unique target of the antitumor drug camptothecin that selectively recognizes the DNA-topoisomerase covalent complex and reversibly stabilizes it. The biochemical and structural-dynamical properties of the Asp677Gly-Val703Ile double mutant with enhanced CPT sensitivity have been investigated. The mutant displays a lower religation rate of the DNA substrate when compared to the wild-type protein. Analyses of the structural dynamical properties by molecular dynamics simulation show that the mutant has reduced flexibility and an active site partially destructured at the level of the Lys532 residue. These results demonstrate long-range communication mechanism where reduction of the linker flexibility alters the active site geometry with the consequent lowering of the religation rate and increase in drug sensitivity.
拓扑异构酶I是控制细胞内DNA拓扑结构的普遍存在的酶。它们是抗肿瘤药物喜树碱的独特靶点,喜树碱能选择性识别DNA-拓扑异构酶共价复合物并使其可逆性稳定。已对具有增强喜树碱敏感性的Asp677Gly-Val703Ile双突变体的生化及结构动力学特性进行了研究。与野生型蛋白相比,该突变体的DNA底物再连接速率较低。通过分子动力学模拟对结构动力学特性进行分析表明,该突变体的柔韧性降低且活性位点在Lys532残基水平部分解构重组。这些结果表明存在一种远程通信机制,即连接体柔韧性的降低会改变活性位点的几何形状,从而导致再连接速率降低并提高药物敏感性