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人分泌型 IIA 磷脂酶的结构方面和激活机制。

Structural aspects and activation mechanism of human secretory group IIA phospholipase.

机构信息

Department of Natural Sciences, CUNY Hostos Community College, 475 Grand Concourse, Bronx, NY, 10451, USA.

出版信息

Eur Biophys J. 2020 Sep;49(6):511-531. doi: 10.1007/s00249-020-01458-5. Epub 2020 Aug 27.

Abstract

Phospholipases are important probes for understanding structure-function relationships of membrane proteins. Many neurotoxins have phospholipase activity, and they have been recognized to be potential therapeutic agents for biological warfare. Understanding the modes of action of these enzymes is important for the development of effective therapeutic strategies. Human secretory phospholipases A2 (sPLA) interact with cellular membranes and catalyze the hydrolysis of phosphate ester bonds of phospholipids. The activity of these enzymes increases tremendously upon binding to a hydrophobic interface. Using molecular dynamics (MD) simulations in implicit solvent and membrane environments, we investigated alterations in structure and conformation of human sPLA upon its interaction with a membrane that may be associated with the activation of the enzyme. In 50 ns MD simulations, starting from six different initial orientations of the protein relative to the membrane surface, the enzyme consistently adopted a membrane-bound configuration in close agreement with the known experimental data. The simulations also reproduced the experimentally determined distribution of hydrophobic and polar side chains on the interfacial binding surface. Differences in the dynamic behavior of the enzyme between the solvent and membrane-bound states were observed. In nonpolar media, the enzyme underwent major conformational rearrangements, which exposed the active site to the membrane. The increased mobility of the surface loop and the β-wing regions is required for the conformational change, which is essentially induced by the movement of N-terminal helix. Several active site residues underwent structural changes that reorganize the binding site for substrate catalysis. Overall, the results provided a valuable insight into the interfacial behavior of sPLA enzyme and suggested that membrane binding is essential but insufficient for sPLA activation.

摘要

磷脂酶是研究膜蛋白结构与功能关系的重要探针。许多神经毒素具有磷脂酶活性,已被认为是生物战的潜在治疗剂。了解这些酶的作用模式对于开发有效的治疗策略非常重要。人分泌型磷脂酶 A2(sPLA)与细胞膜相互作用,并催化磷脂磷酸酯键的水解。这些酶的活性在与疏水性界面结合时会大大增加。我们使用隐式溶剂和膜环境中的分子动力学(MD)模拟,研究了人 sPLA 在与可能与酶激活相关的膜相互作用时结构和构象的变化。在 50ns 的 MD 模拟中,从蛋白质相对于膜表面的六个不同初始取向开始,该酶始终采用与已知实验数据一致的膜结合构象。模拟还再现了实验测定的界面结合表面上疏水性和亲水性侧链的分布。在溶剂和膜结合状态之间观察到酶的动态行为存在差异。在非极性介质中,酶经历了主要的构象重排,使活性部位暴露于膜中。表面环和β-机翼区域的增加的流动性是构象变化所必需的,这实质上是由 N 端螺旋的运动引起的。几个活性位点残基发生了结构变化,重新组织了用于底物催化的结合位点。总体而言,这些结果深入了解了 sPLA 酶的界面行为,并表明膜结合对于 sPLA 激活是必要的,但还不够。

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