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复杂膜中脂质与P-糖蛋白相互作用的多尺度分子动力学模拟

Multiscale molecular dynamics simulations of lipid interactions with P-glycoprotein in a complex membrane.

作者信息

Domicevica Laura, Koldsø Heidi, Biggin Philip C

机构信息

Structural Bioinformatics and Computational Biochemistry, Department of Biochemistry, University of Oxford, South Parks Road, Oxford, OX1 3QU, United Kingdom.

Structural Bioinformatics and Computational Biochemistry, Department of Biochemistry, University of Oxford, South Parks Road, Oxford, OX1 3QU, United Kingdom.

出版信息

J Mol Graph Model. 2018 Mar;80:147-156. doi: 10.1016/j.jmgm.2017.12.022. Epub 2017 Dec 30.

Abstract

P-glycoprotein (P-gp) can transport a wide range of very different hydrophobic organic molecules across the membrane. Its ability to extrude molecules from the cell creates delivery problems for drugs that target proteins in the central nervous system (CNS) and also causes drug-resistance in many forms of cancer. Whether a drug will be susceptible to export by P-gp is difficult to predict and currently this is usually assessed with empirical and/or animal models. Thus, there is a need to better understand how P-gp works at the molecular level in order to fulfil the 3Rs: Refinement, reduction and replacement of animals in research. As structural information increasingly becomes available, our understanding at the molecular level improves. Proteins like P-gp are however very dynamic entities and thus one of the most appropriate ways to study them is with molecular dynamics simulations, especially as this can capture the influence of the surrounding environment. Recent parameterization developments have meant that it is now possible to simulate lipid bilayers that more closely resemble in vivo membranes in terms of their composition. In this report we construct a complex lipid bilayer that mimics the composition of brain epithelial cells and examine the interactions of it with P-gp. We find that the negatively charged phosphatidylserine lipids in the inner leaflet of the membrane tend to form an annulus around P-gp. We also observed the interaction of cholesterol with three distinct areas of the P-gp. Potential of mean force (PMF) calculations suggest that a crevice between transmembrane helices 10 and 12 has particularly favourable interaction energy for cholesterol.

摘要

P-糖蛋白(P-gp)能够跨膜转运多种极为不同的疏水性有机分子。它将分子从细胞中排出的能力给靶向中枢神经系统(CNS)蛋白质的药物带来了递送难题,并且在多种癌症形式中导致耐药性。一种药物是否会被P-gp排出难以预测,目前通常通过经验性和/或动物模型进行评估。因此,有必要更好地了解P-gp在分子水平上的工作方式,以实现3R原则:在研究中优化、减少和替代动物。随着结构信息越来越容易获得,我们在分子水平上的理解也在提高。然而,像P-gp这样的蛋白质是非常动态的实体,因此研究它们最合适的方法之一是分子动力学模拟,特别是因为这可以捕捉周围环境的影响。最近的参数化发展意味着现在有可能模拟在组成上更类似于体内膜的脂质双层。在本报告中,我们构建了一个模拟脑上皮细胞组成的复合脂质双层,并研究其与P-gp的相互作用。我们发现膜内小叶中带负电荷的磷脂酰丝氨酸脂质倾向于在P-gp周围形成一个环。我们还观察到胆固醇与P-gp的三个不同区域的相互作用。平均力势(PMF)计算表明,跨膜螺旋10和12之间的缝隙对胆固醇具有特别有利的相互作用能。

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