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更快但不更甜:用于 Martini 3 的再水平化脂多糖模型和具有加速动力学的 Martini 2 版本。

Faster but Not Sweeter: A Model of Re-level Lipopolysaccharide for Martini 3 and a Martini 2 Version with Accelerated Kinetics.

机构信息

Department of Biochemistry, University of Oxford, Oxford OX1 3QU, England.

Departamento de Física Aplicada, Universidade de Santiago de Compostela, Santiago de Compostela 15782, Spain.

出版信息

J Chem Theory Comput. 2024 Aug 13;20(15):6890-6903. doi: 10.1021/acs.jctc.4c00374. Epub 2024 Jul 15.

Abstract

Lipopolysaccharide (LPS) is a complex glycolipid molecule that is the main lipidic component of the outer leaflet of the outer membrane of Gram-negative bacteria. It has very limited lateral motion compared to phospholipids, which are more ubiquitous in biological membranes, including in the inner leaflet of the outer membrane of Gram-negative bacteria. The slow-moving nature of LPS can present a hurdle for molecular dynamics simulations, given that the (pragmatically) accessible timescales to simulations are currently limited to microseconds, during which LPS displays some conformational dynamics but hardly any lateral diffusion. Thus, it is not feasible to observe phenomena such as insertion of molecules, including antibiotics/antimicrobials, directly into the outer membrane from the extracellular side nor to observe LPS dissociating from proteins via molecular dynamics using currently available models at the atomistic and more coarse-grained levels of granularity. Here, we present a model of deep rough LPS compatible with the Martini 2 coarse-grained force field with scaled down nonbonded interactions to enable faster diffusion. We show that the faster-diffusing LPS model is able to reproduce the salient biophysical properties of the standard models, but due to its faster lateral motion, molecules are able to penetrate deeper into membranes containing the faster model. We show that the fast ReLPS model is able to reproduce experimentally determined patterns of interaction with outer membrane proteins while also allowing for LPS to associate and dissociate with proteins within microsecond timescales. We also complete the Martini 3 LPS toolkit for by presenting a (standard) model of deep rough LPS for this force field.

摘要

脂多糖(LPS)是一种复杂的糖脂分子,是革兰氏阴性菌外膜外层的主要脂质成分。与更普遍存在于生物膜中的磷脂相比,它的侧向运动非常有限,包括在革兰氏阴性菌外膜的内层。由于目前模拟的(实际)可访问时间尺度限于微秒,而在这段时间内 LPS 仅显示出一些构象动力学,几乎没有任何侧向扩散,因此 LPS 的缓慢移动性质可能会对分子动力学模拟构成障碍。因此,直接从细胞外观察分子(包括抗生素/抗菌剂)插入到外膜中,或者通过分子动力学观察 LPS 通过目前可用的原子和更粗粒度的模型从蛋白质上解离,这些现象都是不可行的。在这里,我们提出了一种与 Martini 2 粗粒化力场兼容的深粗糙 LPS 模型,该模型采用缩小的非键相互作用来实现更快的扩散。我们表明,更快扩散的 LPS 模型能够重现标准模型的突出生物物理特性,但由于其更快的侧向运动,分子能够更深入地穿透含有更快模型的膜。我们表明,快速 ReLPS 模型能够重现与外膜蛋白相互作用的实验确定模式,同时也允许 LPS 在微秒时间尺度内与蛋白质结合和解离。我们还通过为该力场呈现(标准)深粗糙 LPS 模型,完成了 Martini 3 LPS 工具包。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0bda/11325540/52c1a0eacccb/ct4c00374_0001.jpg

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