Mattos Carla, Bellamacina Cornelia R, Peisach Ezra, Pereira Antonio, Vitkup Dennis, Petsko Gregory A, Ringe Dagmar
Department of Molecular and Structural Biochemistry, North Carolina State University, Campus Box 7622, 128 Polk Hall, Raleigh, NC 27695, USA.
J Mol Biol. 2006 Apr 14;357(5):1471-82. doi: 10.1016/j.jmb.2006.01.039. Epub 2006 Jan 30.
Multiple solvent crystal structures (MSCS) of porcine pancreatic elastase were used to map the binding surface the enzyme. Crystal structures of elastase in neat acetonitrile, 95% acetone, 55% dimethylformamide, 80% 5-hexene-1,2-diol, 80% isopropanol, 80% ethanol and 40% trifluoroethanol showed that the organic solvent molecules clustered in the active site, were found mostly unclustered in crystal contacts and in general did not bind elsewhere on the surface of elastase. Mixtures of 40% benzene or 40% cyclohexane in 50% isopropanol and 10% water showed no bound benzene or cyclohexane molecules, but did reveal bound isopropanol. The clusters of organic solvent probe molecules coincide with pockets occupied by known inhibitors. MSCS also reveal the areas of plasticity within the elastase binding site and allow for the visualization of a nearly complete first hydration shell. The pattern of organic solvent clusters determined by MSCS for elastase is consistent with patterns for hot spots in protein-ligand interactions determined from database analysis in general. The MSCS method allows probing of hot spots, plasticity and hydration simultaneously, providing a powerful complementary strategy to guide computational methods currently in development for binding site determination, ligand docking and design.
猪胰弹性蛋白酶的多溶剂晶体结构(MSCS)被用于绘制该酶的结合表面。弹性蛋白酶在纯乙腈、95%丙酮、55%二甲基甲酰胺、80% 5-己烯-1,2-二醇、80%异丙醇、80%乙醇和40%三氟乙醇中的晶体结构表明,有机溶剂分子聚集在活性位点,在晶体接触中大多未聚集,并且一般不在弹性蛋白酶表面的其他位置结合。40%苯或40%环己烷与50%异丙醇和10%水的混合物中未显示结合的苯或环己烷分子,但确实显示出结合的异丙醇。有机溶剂探针分子的簇与已知抑制剂占据的口袋重合。MSCS还揭示了弹性蛋白酶结合位点内的可塑性区域,并允许可视化几乎完整的第一水化层。通过MSCS确定的弹性蛋白酶的有机溶剂簇模式与一般从数据库分析确定的蛋白质-配体相互作用中的热点模式一致。MSCS方法允许同时探测热点、可塑性和水化,为指导目前正在开发的用于结合位点确定、配体对接和设计的计算方法提供了一种强大的补充策略。