Wang W, Donini O, Reyes C M, Kollman P A
Graduate Group in Biophysics, University of California San Francisco, California 94143, USA.
Annu Rev Biophys Biomol Struct. 2001;30:211-43. doi: 10.1146/annurev.biophys.30.1.211.
Computer modeling has been developed and widely applied in studying molecules of biological interest. The force field is the cornerstone of computer simulations, and many force fields have been developed and successfully applied in these simulations. Two interesting areas are (a) studying enzyme catalytic mechanisms using a combination of quantum mechanics and molecular mechanics, and (b) studying macromolecular dynamics and interactions using molecular dynamics (MD) and free energy (FE) calculation methods. Enzyme catalysis involves forming and breaking of covalent bonds and requires the use of quantum mechanics. Noncovalent interactions appear ubiquitously in biology, but here we confine ourselves to review only noncovalent interactions between protein and protein, protein and ligand, and protein and nucleic acids.
计算机建模已得到发展并广泛应用于研究具有生物学意义的分子。力场是计算机模拟的基石,许多力场已被开发并成功应用于这些模拟中。两个有趣的领域是:(a)结合量子力学和分子力学研究酶的催化机制;(b)使用分子动力学(MD)和自由能(FE)计算方法研究大分子动力学和相互作用。酶催化涉及共价键的形成和断裂,需要使用量子力学。非共价相互作用在生物学中普遍存在,但在这里我们仅局限于综述蛋白质与蛋白质、蛋白质与配体以及蛋白质与核酸之间的非共价相互作用。