Department of Chemistry & Biochemistry, California State University, Long Beach, CA 90840, USA.
Department of Chemical Engineering, California State University, Long Beach, CA 90840, USA.
Biomolecules. 2021 Apr 15;11(4):580. doi: 10.3390/biom11040580.
The present article reviews published efforts to study acetylcholinesterase and butyrylcholinesterase structure and function using computer-based modeling and simulation techniques. Structures and models of both enzymes from various organisms, including rays, mice, and humans, are discussed to highlight key structural similarities in the active site gorges of the two enzymes, such as flexibility, binding site location, and function, as well as differences, such as gorge volume and binding site residue composition. Catalytic studies are also described, with an emphasis on the mechanism of acetylcholine hydrolysis by each enzyme and novel mutants that increase catalytic efficiency. The inhibitory activities of myriad compounds have been computationally assessed, primarily through Monte Carlo-based docking calculations and molecular dynamics simulations. Pharmaceutical compounds examined herein include FDA-approved therapeutics and their derivatives, as well as several other prescription drug derivatives. Cholinesterase interactions with both narcotics and organophosphate compounds are discussed, with the latter focusing primarily on molecular recognition studies of potential therapeutic value and on improving our understanding of the reactivation of cholinesterases that are bound to toxins. This review also explores the inhibitory properties of several other organic and biological moieties, as well as advancements in virtual screening methodologies with respect to these enzymes.
本文综述了利用计算机建模和模拟技术研究乙酰胆碱酯酶和丁酰胆碱酯酶结构与功能的已有成果。讨论了来自各种生物体(包括射线、老鼠和人类)的两种酶的结构和模型,以突出两个酶的活性位点峡谷中的关键结构相似性,如灵活性、结合位点位置和功能,以及差异,如峡谷体积和结合位点残基组成。还描述了催化研究,重点是每种酶水解乙酰胆碱的机制以及提高催化效率的新型突变体。通过基于蒙特卡罗的对接计算和分子动力学模拟,对大量化合物的抑制活性进行了计算评估。本文研究的药物化合物包括 FDA 批准的治疗药物及其衍生物,以及其他几种处方药衍生物。讨论了胆碱酯酶与麻醉剂和有机磷化合物的相互作用,后者主要侧重于具有潜在治疗价值的分子识别研究,以及提高对与毒素结合的胆碱酯酶的重激活的理解。本文还探讨了几种其他有机和生物部分的抑制特性,以及针对这些酶的虚拟筛选方法的进展。