Center for Synaptic Neuroscience and Technology (NSYN@UniGe), Istituto Italiano di Tecnologia, Largo Rosanna Benzi, 10, Genova 16132, Italy.
Department of Experimental Medicine, Università Degli Studi di Genova, Viale Benedetto XV, 3, Genova 16132, Italy.
ACS Chem Neurosci. 2022 Jul 20;13(14):2140-2153. doi: 10.1021/acschemneuro.2c00139. Epub 2022 Jul 11.
The blood-brain barrier (BBB) strictly regulates the exchange of ions and molecules between the blood and the central nervous system. Tight junctions (TJs) are multimeric structures that control the transport through the paracellular spaces between the adjacent brain endothelial cells of the BBB. Claudin-5 (Cldn5) proteins are essential for TJ formation and assemble into multiprotein complexes via interactions within the same cell membrane and transinteractions across two contiguous cells. Despite the relevant biological function of Cldn5 proteins and their role as targets of brain drug delivery strategies, the molecular details of their assembly within TJs are still unclear. Two different structural models have been recently introduced, in which Cldn5 dimers belonging to opposite cells join to generate paracellular pores. However, a comparison of these models in terms of ionic transport features is still lacking. In this work, we used molecular dynamics simulations and free energy (FE) calculations to assess the two Cldn5 pore models and investigate the thermodynamic properties of water and physiological ions permeating through them. Despite different FE profiles, both structures present single/multiple FE barriers to ionic permeation, while being permissive to water flux. These results reveal that both models are compatible with the physiological role of Cldn5 TJ strands. By identifying the protein-protein surface at the core of TJ Cldn5 assemblies, our computational investigation provides a basis for the rational design of synthetic peptides and other molecules capable of opening paracellular pores in the BBB.
血脑屏障 (BBB) 严格调节血液和中枢神经系统之间的离子和分子交换。紧密连接 (TJ) 是多聚体结构,通过 BBB 相邻脑内皮细胞之间的细胞旁空间控制运输。 Claudin-5 (Cldn5) 蛋白对于 TJ 的形成是必不可少的,并且通过同一细胞膜内的相互作用和两个相邻细胞之间的跨相互作用组装成多蛋白复合物。尽管 Cldn5 蛋白具有相关的生物学功能并且是脑药物输送策略的靶标,但它们在 TJ 内组装的分子细节仍不清楚。最近引入了两种不同的结构模型,其中属于相反细胞的 Cldn5 二聚体结合以产生细胞旁孔。然而,这些模型在离子传输特征方面的比较仍然缺乏。在这项工作中,我们使用分子动力学模拟和自由能 (FE) 计算来评估这两种 Cldn5 孔模型,并研究它们渗透的水和生理离子的热力学特性。尽管 FE 分布不同,但两种结构都对离子渗透具有单/多 FE 屏障,同时允许水通量。这些结果表明,这两种模型都与 Cldn5 TJ 链的生理作用兼容。通过鉴定 TJ Cldn5 组装核心的蛋白质-蛋白质表面,我们的计算研究为合理设计能够打开 BBB 细胞旁孔的合成肽和其他分子提供了基础。