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对将claudin-5嵌入紧密连接至关重要的分子和结构跨膜决定因素揭示了一种独特的四螺旋束排列。

Molecular and structural transmembrane determinants critical for embedding claudin-5 into tight junctions reveal a distinct four-helix bundle arrangement.

作者信息

Rossa Jan, Protze Jonas, Kern Christian, Piontek Anna, Günzel Dorothee, Krause Gerd, Piontek Jörg

机构信息

*Leibniz-Institut für Molekulare Pharmakologie (FMP), 13125 Berlin, Germany.

†Institute of Clinical Physiology, Charité-Universitätsmedizin Berlin, 12203 Berlin, Germany.

出版信息

Biochem J. 2014 Nov 15;464(1):49-60. doi: 10.1042/BJ20140431.

Abstract

The mechanism of TJ (tight junction) assembly and the structure of TJ strand-forming Cldns (claudins) are unclear. To identify determinants of assembly of blood-brain barrier-related Cldn3 and Cldn5, chimaeric mutants were analysed by cellular reconstitution of TJ strands and live-cell imaging. On the basis of the rescue of mutants deficient for strand formation, we identified Cldn5 residues (Cys128, Ala132, Ile142, Ala163, Ile166 and Leu174) involved in Cldn folding and assembly. Experimental results were combined with structural bioinformatics approaches. Initially the experimentally validated previous model of the ECL2 (extracellular loop 2) of Cldn5 was extended to the flanking transmembrane segments (TM3/TM4). A coiled-coil interface probably caused by alternating small and large residues is supported by concomitant knob-into-hole interactions including Cldn5-specific residues identified in the present paper. To address arrangement of the TMs in a four-helix bundle, data from evolutionary sequence couplings and comparative modelling of intramolecular interfaces in the transmembrane region of Cldns led to a complete Cldn5 model. Our suggested Cldn subtype-specific intramolecular interfaces that are formed by conserved coiled-coil motifs and non-conserved residues in distinct TM positions were confirmed by the recently released crystal structure of Cldn15. The identified molecular and structural determinants essentially contribute to assembly of Cldns into TJ strands.

摘要

紧密连接(TJ)组装的机制以及形成TJ链的闭合蛋白(Cldns)的结构尚不清楚。为了确定血脑屏障相关的Cldn3和Cldn5组装的决定因素,通过TJ链的细胞重组和活细胞成像分析了嵌合突变体。基于对缺乏链形成的突变体的挽救,我们确定了参与Cldn折叠和组装的Cldn5残基(半胱氨酸128、丙氨酸132、异亮氨酸142、丙氨酸163、异亮氨酸166和亮氨酸174)。实验结果与结构生物信息学方法相结合。最初,经过实验验证的Cldn5细胞外环2(ECL2)的先前模型扩展到侧翼跨膜片段(TM3/TM4)。包括本文中鉴定的Cldn5特异性残基在内的伴随旋钮入孔相互作用支持了可能由大小交替的残基引起的卷曲螺旋界面。为了解决四螺旋束中跨膜片段(TMs)的排列问题,来自进化序列偶联的数据以及Cldns跨膜区域分子内界面的比较建模得出了完整的Cldn5模型。最近发布的Cldn15晶体结构证实了我们提出的由保守的卷曲螺旋基序和不同TM位置的非保守残基形成的Cldn亚型特异性分子内界面。所确定的分子和结构决定因素对Cldns组装成TJ链起着重要作用。

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