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生物膜的动态“分子画像”是由其侧向纳米级不均匀性绘制而成的。

Dynamic "Molecular Portraits" of Biomembranes Drawn by Their Lateral Nanoscale Inhomogeneities.

机构信息

M.M. Shemyakin & Yu.A. Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, Miklukho-Maklaya Street, 16/10, 117997 Moscow, Russia.

Department of Applied Mathematics, National Research University Higher School of Economics, Myasnitskaya ul. 20, 101000 Moscow, Russia.

出版信息

Int J Mol Sci. 2021 Jun 10;22(12):6250. doi: 10.3390/ijms22126250.

DOI:10.3390/ijms22126250
PMID:34200697
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8230387/
Abstract

To date, it has been reliably shown that the lipid bilayer/water interface can be thoroughly characterized by a sophisticated so-called "dynamic molecular portrait". The latter reflects a combination of time-dependent surface distributions of various physicochemical properties, inherent in both model lipid bilayers and natural multi-component cell membranes. One of the most important features of biomembranes is their mosaicity, which is expressed in the constant presence of lateral inhomogeneities, the sizes and lifetimes of which vary in a wide range-from 1 to 10 nm and from 0.1 ns to milliseconds. In addition to the relatively well-studied macroscopic domains (so-called "rafts"), the analysis of micro- and nanoclusters (or domains) that form an instantaneous picture of the distribution of structural, dynamic, hydrophobic, electrical, etc., properties at the membrane-water interface is attracting increasing interest. This is because such nanodomains (NDs) have been proven to be crucial for the proper membrane functioning in cells. Therefore, an understanding with atomistic details the phenomena associated with NDs is required. The present mini-review describes the recent results of experimental and in silico studies of spontaneously formed NDs in lipid membranes. The main attention is paid to the methods of ND detection, characterization of their spatiotemporal parameters, the elucidation of the molecular mechanisms of their formation. Biological role of NDs in cell membranes is briefly discussed. Understanding such effects creates the basis for rational design of new prospective drugs, therapeutic approaches, and artificial membrane materials with specified properties.

摘要

迄今为止,已经可靠地表明,脂质双层/水界面可以通过复杂的所谓“动态分子肖像”进行彻底表征。后者反映了模型脂质双层和天然多组分细胞膜中固有的各种物理化学性质的时间依赖性表面分布的组合。生物膜的一个最重要特征是其镶嵌性,这表现在侧向非均相性的持续存在,其大小和寿命在很宽的范围内变化-从 1 到 10nm,从 0.1ns 到毫秒。除了相对研究充分的宏观域(所谓的“筏”)之外,对微纳米簇(或域)的分析越来越受到关注,这些微纳米簇(或域)形成了在膜-水界面处结构、动态、疏水性、电性等性质分布的瞬时图像。这是因为已经证明这些纳米域(NDs)对于细胞中适当的膜功能至关重要。因此,需要从原子细节上理解与 NDs 相关的现象。本综述描述了脂质膜中自发形成的 NDs 的实验和计算研究的最新结果。主要关注的是 ND 的检测方法、它们的时空参数的特征化,以及它们形成的分子机制的阐明。简要讨论了 NDs 在细胞膜中的生物学作用。对这些效应的理解为合理设计具有指定性质的新型有前途的药物、治疗方法和人工膜材料奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/217b/8230387/c703aaddb78b/ijms-22-06250-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/217b/8230387/d3d84ffd04b5/ijms-22-06250-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/217b/8230387/c703aaddb78b/ijms-22-06250-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/217b/8230387/d3d84ffd04b5/ijms-22-06250-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/217b/8230387/c703aaddb78b/ijms-22-06250-g002.jpg

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