Fuladi Shadi, McGuinness Sarah, Khalili-Araghi Fatemeh
Department of Physics, University of Illinois at Chicago, Chicago, IL, United States.
Department of Bioengineering, University of Illinois at Chicago, Chicago, IL, United States.
Front Mol Biosci. 2022 Sep 29;9:964877. doi: 10.3389/fmolb.2022.964877. eCollection 2022.
Claudins are cell-cell adhesion proteins within tight junctions that connect epithelial cells together. Claudins polymerize into a network of strand-like structures within the membrane of adjoining cells and create ion channels that control paracellular permeability to water and small molecules. Tight junction morphology and barrier function is tissue specific and regulated by claudin subtypes. Here, we present a molecular dynamics study of claudin-15 strands within lipid membranes and the role of a single-point mutation (A134P) on the third transmembrane helix (TM3) of claudin-15 in determining the morphology of the strand. Our results indicate that the A134P mutation significantly affects the lateral flexibility of the strands, increasing the persistence length of claudin-15 strands by a factor of three. Analyses of claudin-claudin contact in our second-long trajectories show that the mutation does not alter the intermolecular contacts (interfaces) between claudins. However, the dynamics and frequency of interfacial contacts are significantly affected. The A134P mutation introduces a kink in TM3 of claudin-15 similar to the one observed in claudin-3 crystal structure. The kink on TM3 skews the rotational flexibility of the claudins in the strands and limits their fluctuation in one direction. This asymmetric movement in the context of the double rows reduces the lateral flexibility of the strand and leads to higher persistence lengths of the mutant.
闭合蛋白是紧密连接中的细胞间粘附蛋白,可将上皮细胞连接在一起。闭合蛋白在相邻细胞的膜内聚合成链状结构网络,并形成控制细胞旁对水和小分子通透性的离子通道。紧密连接的形态和屏障功能具有组织特异性,并受闭合蛋白亚型的调控。在此,我们展示了脂质膜中闭合蛋白-15链的分子动力学研究,以及闭合蛋白-15第三个跨膜螺旋(TM3)上的单点突变(A134P)在决定链形态方面的作用。我们的结果表明,A134P突变显著影响链的侧向柔韧性,使闭合蛋白-15链的持续长度增加了两倍。对我们第二条最长轨迹中的闭合蛋白-闭合蛋白接触的分析表明,该突变不会改变闭合蛋白之间的分子间接触(界面)。然而,界面接触的动力学和频率受到显著影响。A134P突变在闭合蛋白-15的TM3中引入了一个扭结,类似于在闭合蛋白-3晶体结构中观察到的扭结。TM3上的扭结使链中闭合蛋白的旋转柔韧性发生偏差,并限制了它们在一个方向上的波动。在双排结构的背景下,这种不对称运动降低了链的侧向柔韧性,并导致突变体具有更高的持续长度。