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Biochemical and biophysical analyses of tight junction permeability made of claudin-16 and claudin-19 dimerization

机译:claudin-16和claudin-19二聚化产生紧密连接渗透性的生化和生物物理分析

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The molecular nature of tight junction architecture and permeability is a long-standing mystery. Here, by comprehensive biochemical, biophysical, genetic, and electron microscopic analyses of claudin-16 and -19 interactions—two claudins that play key polygenic roles in fatal human renal disease, FHHNC—we found that 1) claudin-16 and -19 form a stable dimer through cis association of transmembrane domains 3 and 4; 2) mutations disrupting the claudin-16 and -19 cis interaction increase tight junction ultrastructural complexity but reduce tight junction permeability; and 3) no claudin hemichannel or heterotypic channel made of claudin-16 and -19 trans interaction can exist. These principles can be used to artificially alter tight junction permeabilities in various epithelia by manipulating selective claudin interactions. Our study also emphasizes the use of a novel recording approach based on scanning ion conductance microscopy to resolve tight junction permeabilities with submicrometer precision.
机译:紧密连接结构和渗透性的分子性质是一个长期存在的谜。在这里,通过对claudin-16和-19相互作用(两种claudins在致命的人类肾脏疾病FHHNC中起关键的多基因作用)的全面生化,生物物理,遗传和电子显微镜分析,我们发现1)claudin-16和-19形成通过跨膜结构域3和4的顺式结合形成稳定的二聚体; 2)破坏claudin-16和-19顺式相互作用的突变增加了紧密连接的超微结构复杂性,但降低了紧密连接的通透性;和3)不能存在由claudin-16和-19反式相互作用形成的claudin半通道或异型通道。这些原理可用于通过操纵选择性claudin相互作用来人工改变各种上皮细胞的紧密连接通透性。我们的研究还强调了使用基于扫描离子电导显微镜的新型记录方法来解决亚微米级精度的紧密结渗透性。

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