首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Molecular Architecture of the Blood Brain Barrier Tight Junction Proteins-A Synergistic Computational and In Vitro Approach
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Molecular Architecture of the Blood Brain Barrier Tight Junction Proteins-A Synergistic Computational and In Vitro Approach

机译:血脑屏障紧密连接蛋白的分子结构-一种协同计算和体外方法

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The blood-brain barrier (BBB) constituted by claudin-5 tight junctions is critical in maintaining the homeostasis of the central nervous system, but this highly selective molecular interface is an impediment for therapeutic interventions in neurodegenerative and neurological diseases. Therapeutic strategies that can exploit the paracellular transport remain elusive due to lack of molecular insights of the tight junction assembly. This study focuses on analyzing the membrane driven cis interactions of claudin-5 proteins in the formation of the BBB tight junctions. We have adopted a synergistic approach employing in silico multiscale dynamics and in vitro cross-linking experiments to study the claudin-5 interactions. Long time scale simulations of claudin-5 monomers, in seven different lipid compositions, show formation of cis dimers that subsequently aggregate into strands. In vitro formaldehyde cross-linking studies also conclusively show that cis-interacting claudin-5 dimers cross-link with short methylene spacers. Using this synergistic approach, we have identified five unique dimer interfaces in our simulations that correlate with the cross-linking experiments, four of which are mediated by transmembrane (TM) helices and the other mediated by extracellular loops (ECL). Potential of mean force calculations of these five dimers revealed that the TM mediated interfaces, which can have distinctive leucine zipper interactions in some cases, are more stable than the ECL mediated interface. Additionally, simulations show that claudin-5 dimerization is significantly influenced by the lipid microenvironment. This study captures the fundamental interactions responsible for the BBB tight junction assembly and offers a framework for extending this work to other tight junctions found in the body.
机译:由claudin-5紧密连接构成的血脑屏障(BBB)对于维持中枢神经系统的稳态至关重要,但是这种高度选择性的分子界面阻碍了神经退行性疾病和神经系统疾病的治疗干预。由于缺乏紧密连接组件的分子见解,可利用细胞旁运输的治疗策略仍然难以捉摸。这项研究的重点是分析BBB紧密连接形成中claudin-5蛋白的膜驱动的顺式相互作用。我们采用了一种采用计算机多尺度动力学和体外交联实验的协同方法来研究claudin-5相互作用。在七个不同的脂质成分中对claudin-5单体进行的长时间规模仿真显示,顺式二聚体的形成随后会聚集成链。体外甲醛交联研究也最终表明,顺式相互作用的claudin-5二聚体与短的亚甲基间隔基交联。使用这种协同方法,我们在仿真中确定了五个独特的二聚体界面,这些界面与交联实验相关,其中四个是由跨膜(TM)螺旋介导的,另一个是由细胞外环(ECL)介导的。这五个二聚体的平均力计算潜力表明,在某些情况下可以介导亮氨酸拉链相互作用的TM介导的界面比ECL介导的界面更稳定。另外,模拟显示claudin-5二聚化显着受脂质微环境影响。这项研究捕获了BBB紧密连接组装的基本相互作用,并提供了将这项工作扩展到体内其他紧密连接的框架。

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