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基于紧密连接蛋白的组装体的多尺度建模:生物界面新结构的放大镜

Multiscale modelling of claudin-based assemblies: A magnifying glass for novel structures of biological interfaces.

作者信息

Berselli Alessandro, Benfenati Fabio, Maragliano Luca, Alberini Giulio

机构信息

Center for Synaptic Neuroscience and Technology (NSYN@UniGe), Istituto Italiano di Tecnologia, Largo Rosanna Benzi, 10, 16132 Genova, Italy.

Department of Experimental Medicine, Università degli Studi di Genova, Viale Benedetto XV 3, 16132 Genova, Italy.

出版信息

Comput Struct Biotechnol J. 2022 Oct 28;20:5984-6010. doi: 10.1016/j.csbj.2022.10.038. eCollection 2022.

Abstract

Claudins (Cldns) define a family of transmembrane proteins that are the major determinants of the tight junction integrity and tissue selectivity. They promote the formation of either barriers or ion-selective channels at the interface between two facing cells, across the paracellular space. Multiple Cldn subunits form complexes that include (intracellular) interactions along the membrane of a single cell and (intercellular) interactions across adjacent cells. The first description of Cldn assemblies was provided by electron microscopy, while electrophysiology, mutagenesis and cell biology experiments addressed the functional role of different Cldn homologs. However, the investigation of the molecular details of Cldn subunits and complexes are hampered by the lack of experimental native structures, currently limited to Cldn15. The recent implementation of computer-based techniques greatly contributed to the elucidation of Cldn properties. Molecular dynamics simulations and docking calculations were extensively used to refine the first Cldn multimeric model postulated from the crystal structure of Cldn15, and contributed to the introduction of a novel, alternative, arrangement. While both these multimeric assemblies were found to account for the physiological properties of some family members, they gave conflicting results for others. In this review, we illustrate the major findings on Cldn-based systems that were achieved by using state-of-the-art computational methodologies. The information provided by these results could be useful to improve the characterization of the Cldn properties and help the design of new efficient strategies to control the paracellular transport of drugs or other molecules.

摘要

紧密连接蛋白(Claudins,Cldns)是一类跨膜蛋白家族,是紧密连接完整性和组织选择性的主要决定因素。它们促进在两个相对细胞之间的界面处、跨细胞旁间隙形成屏障或离子选择性通道。多个Cldn亚基形成复合物,包括沿单个细胞膜的(细胞内)相互作用和跨相邻细胞的(细胞间)相互作用。对Cldn组装体的首次描述是通过电子显微镜提供的,而电生理学、诱变和细胞生物学实验则研究了不同Cldn同源物的功能作用。然而,由于缺乏实验性天然结构(目前仅限于Cldn15),对Cldn亚基和复合物分子细节的研究受到阻碍。基于计算机技术的最新应用极大地促进了对Cldn特性的阐明。分子动力学模拟和对接计算被广泛用于完善根据Cldn15晶体结构推测的首个Cldn多聚体模型,并有助于引入一种新的、替代的排列方式。虽然发现这两种多聚体组装体都能解释某些家族成员的生理特性,但对其他成员却给出了相互矛盾的结果。在这篇综述中,我们阐述了使用最先进的计算方法在基于Cldn的系统上取得的主要发现。这些结果提供的信息可能有助于改进对Cldn特性的表征,并有助于设计新的有效策略来控制药物或其他分子的细胞旁运输。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5f75/9647347/e379307921e2/gr16.jpg

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