首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Claudin-3 and Claudin-5 Protein Folding and Assembly into the Tight Junction Are Controlled by Non-conserved Residues in the Transmembrane 3 (TM3) and Extracellular Loop 2 (ECL2) Segments
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Claudin-3 and Claudin-5 Protein Folding and Assembly into the Tight Junction Are Controlled by Non-conserved Residues in the Transmembrane 3 (TM3) and Extracellular Loop 2 (ECL2) Segments

机译:Claudin-3和Claudin-5蛋白的折叠和组装成紧密连接是由跨膜3(TM3)和细胞外环2(ECL2)节中的非保守残基控制的。

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摘要

The mechanism of tight junction (TJ) assembly and the structure of claudins (Cldn) that form the TJ strands are unclear. This limits the molecular understanding of paracellular barriers and strategies for drug delivery across tissue barriers. Cldn3 and Cldn5 are both common in the blood-brain barrier but form TJ strands with different ultrastructures. To identify the molecular determinants of folding and assembly of these classic claudins, Cldn3/Cldn5 chimeric mutants were generated and analyzed by cellular reconstitution of TJ strands, live cell confocal imaging, and freeze-fracture electron microscopy. A comprehensive screening was performed on the basis of the rescue of mutants deficient for strand formation. Cldn3/Cldn5 residues in transmembrane segment 3, TM3 (Ala-127/Cys-128, Ser-136/Cys-137, Ser-138/Phe-139), and the transition of TM3 to extracellular loop 2, ECL2 (Thr-141/Ile-142) and ECL2 (Asn-148/Asp-149, Leu-150/Thr-151, Arg-157/Tyr-158), were identified to be involved in claudin folding and/or assembly. Blue native PAGE and FRET assays revealed 1% n-dodecyl β-d-maltoside-resistant cis-dimerization for Cldn5 but not for Cldn3. This homophilic interaction was found to be stabilized by residues in TM3. The resulting subtype-specific cis-dimer is suggested to be a subunit of polymeric TJ strands and contributes to the specific ultrastructure of the TJ detected by freeze-fracture electron microscopy. In particular, the Cldn5-like exoplasmic face-associated and particle-type strands were found to be related to cis-dimerization. These results provide new insight into the mechanisms of paracellular barrier formation by demonstrating that defined non-conserved residues in TM3 and ECL2 of classic claudins contribute to the formation of TJ strands with differing ultrastructures.
机译:紧密连接(TJ)组装的机制和形成TJ链的claudins(Cldn)的结构尚不清楚。这限制了对细胞旁屏障的分子理解以及跨组织屏障的药物递送策略。 Cldn3和Cldn5都在血脑屏障中很常见,但形成具有不同超微结构的TJ链。为了确定这些经典claudins折叠和组装的分子决定因素,生成了Cldn3 / Cldn5嵌合突变体,并通过TJ链的细胞重构,活细胞共聚焦成像和冷冻断裂电子显微镜对它们进行了分析。在挽救缺乏链形成的突变体的基础上进行了全面筛选。跨膜区段3 TM3(Ala-127 / Cys-128,Ser-136 / Cys-137,Ser-138 / Phe-139)中的Cldn3 / Cldn5残基以及TM3向细胞外环2 ECL2(Thr- 141 / Ile-142)和ECL2(Asn-148 / Asp-149,Leu-150 / Thr-151,Arg-157 / Tyr-158)被确定参与claudin折叠和/或组装。蓝色的天然PAGE和FRET分析显示,Cldn5具有1%的正十二烷基β-d-麦芽糖苷抗性顺式二聚,而Cldn3没有。发现该同源相互作用被TM3中的残基稳定。所产生的亚型特异性顺式二聚体被认为是聚合TJ链的亚基,并有助于通过冷冻断裂电子显微镜检测到的TJ的特定超微结构。特别地,发现Cldn5-样胞质外相关的和颗粒型的链与顺式二聚化有关。这些结果证明了经典claudins的TM3和ECL2中定义的非保守残基有助于形成具有不同超微结构的TJ链,从而为细胞旁屏障形成的机理提供了新的见识。

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