Vidossich Pietro, Magistrato Alessandra
Department of Chemistry, Autonomous University of Barcelona, 08193 Cerdanyola del Vallés, Spain.
CNR-IOM-Democritos National Simulation Center c/o, International School for Advanced Studies (SISSA/ISAS), via Bonomea 265, 34165 Trieste, Italy.
Biomolecules. 2014 Jul 8;4(3):616-45. doi: 10.3390/biom4030616.
Mixed quantum-classical (quantum mechanical/molecular mechanical (QM/MM)) simulations have strongly contributed to providing insights into the understanding of several structural and mechanistic aspects of biological molecules. They played a particularly important role in metal binding proteins, where the electronic effects of transition metals have to be explicitly taken into account for the correct representation of the underlying biochemical process. In this review, after a brief description of the basic concepts of the QM/MM method, we provide an overview of its capabilities using selected examples taken from our work. Specifically, we will focus on heme peroxidases, metallo-β-lactamases, α-synuclein and ligase ribozymes to show how this approach is capable of describing the catalytic and/or structural role played by transition (Fe, Zn or Cu) and main group (Mg) metals. Applications will reveal how metal ions influence the formation and reduction of high redox intermediates in catalytic cycles and enhance drug metabolism, amyloidogenic aggregate formation and nucleic acid synthesis. In turn, it will become manifest that the protein frame directs and modulates the properties and reactivity of the metal ions.
混合量子经典(量子力学/分子力学,QM/MM)模拟为深入理解生物分子的多个结构和机理方面做出了巨大贡献。它们在金属结合蛋白中发挥了特别重要的作用,在这类蛋白中,为了正确呈现潜在的生化过程,必须明确考虑过渡金属的电子效应。在本综述中,在简要描述QM/MM方法的基本概念之后,我们将通过从我们的工作中选取的实例来概述其功能。具体而言,我们将聚焦于血红素过氧化物酶、金属β-内酰胺酶、α-突触核蛋白和连接酶核酶,以展示这种方法如何能够描述过渡(铁、锌或铜)金属和主族(镁)金属所起的催化和/或结构作用。应用将揭示金属离子如何影响催化循环中高氧化还原中间体的形成和还原,并增强药物代谢、淀粉样聚集物形成和核酸合成。反过来,也将表明蛋白质框架指导并调节金属离子的性质和反应性。