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首页> 外文期刊>Human Molecular Genetics >Phosphorylation of the Usher syndrome 1G protein SANS controls Magi2-mediated endocytosis
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Phosphorylation of the Usher syndrome 1G protein SANS controls Magi2-mediated endocytosis

机译:Usher综合征1G蛋白SANS的磷酸化控制Magi2介导的内吞作用

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摘要

The human Usher syndrome (USH) is a complex ciliopathy with at least 12 chromosomal loci assigned to three clinical subtypes, USH1-3. The heterogeneous USH proteins are organized into protein networks. Here, we identified Magi2 (membrane-associated guanylate kinase inverted-2) as a new component of the USH protein interactome, binding to the multifunctional scaffold protein SANS (USH1G). We showed that the SANS-Magi2 complex assembly is regulated by the phosphorylation of an internal PDZ-binding motif in the sterile alpha motif domain of SANS by the protein kinase CK2. We affirmed Magi2's role in receptormediated, clathrin-dependent endocytosis and showed that phosphorylated SANS tightly regulates Magi2-mediated endocytosis. Specific depletions by RNAi revealed that SANS and Magi2-mediated endocytosis regulates aspects of ciliogenesis. Furthermore, we demonstrated the localization of the SANS-Magi2 complex in the periciliary membrane complex facing the ciliary pocket of retinal photoreceptor cells in situ. Our data suggest that endocytotic processes may not only contribute to photoreceptor cell homeostasis but also counterbalance the periciliary membrane delivery accompanying the exocytosis processes for the cargo vesicle delivery. In USH1G patients, mutations in SANS eliminate Magi2 binding and thereby deregulate endocytosis, lead to defective ciliary transport modules and ultimately disrupt photoreceptor cell function inducing retinal degeneration.
机译:人类Usher综合征(USH)是一种复杂的纤毛病,至少有12个染色体基因座被分配为三种临床亚型USH1-3。异质USH蛋白被组织成蛋白网络。在这里,我们确定Magi2(膜相关的鸟苷酸激酶倒置2)作为USH蛋白相互作用组的新组成部分,与多功能支架蛋白SANS(USH1G)结合。我们显示,SANS-Magi2复合体装配受蛋白质激酶CK2在SANS的无菌alpha主题域中的内部PDZ结合主题的磷酸化调节。我们确认了Magi2在受体介导的网格蛋白依赖性内吞作用中的作用,并表明磷酸化的SANS紧密调节Magi2介导的内吞作用。 RNAi的特定耗竭揭示了SANS和Magi2介导的内吞作用调节纤毛发生的各个方面。此外,我们证明了SANS-Magi2复合物在面对视网膜感光细胞的睫状袋的睫状膜复合物中的定位。我们的数据表明,胞吞过程不仅可能促进感光细胞的动态平衡,而且还可以抵消伴随货物囊泡的胞吐过程伴随的周膜膜的传送。在USH1G患者中,SANS中的突变消除了Magi2结合,从而解除了内吞作用,导致纤毛转运模块缺陷,并最终破坏了导致视网膜变性的感光细胞功能。

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