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寻回蛋白-CCC内体循环复合物的结构组织

Structural Organization of the Retriever-CCC Endosomal Recycling Complex.

作者信息

Boesch Daniel J, Singla Amika, Han Yan, Kramer Daniel A, Liu Qi, Suzuki Kohei, Juneja Puneet, Zhao Xuefeng, Long Xin, Medlyn Michael J, Billadeau Daniel D, Chen Zhe, Chen Baoyu, Burstein Ezra

机构信息

Roy J. Carver Department of Biochemistry, Biophysics & Molecular Biology, Iowa State University, 2437 Pammel Drive, Ames, IA 50011, USA.

Department of Internal Medicine, University of Texas Southwestern Medical Center, 5323 Harry Hines Boulevard, Dallas, TX 75390, USA.

出版信息

bioRxiv. 2023 Jun 7:2023.06.06.543888. doi: 10.1101/2023.06.06.543888.

Abstract

The recycling of membrane proteins from endosomes to the cell surface is vital for cell signaling and survival. Retriever, a trimeric complex of VPS35L, VPS26C and VPS29, together with the CCC complex comprising CCDC22, CCDC93, and COMMD proteins, plays a crucial role in this process. The precise mechanisms underlying Retriever assembly and its interaction with CCC have remained elusive. Here, we present the first high-resolution structure of Retriever determined using cryogenic electron microscopy. The structure reveals a unique assembly mechanism, distinguishing it from its remotely related paralog, Retromer. By combining AlphaFold predictions and biochemical, cellular, and proteomic analyses, we further elucidate the structural organization of the entire Retriever-CCC complex and uncover how cancer-associated mutations disrupt complex formation and impair membrane protein homeostasis. These findings provide a fundamental framework for understanding the biological and pathological implications associated with Retriever-CCC-mediated endosomal recycling.

摘要

膜蛋白从内体循环至细胞表面对于细胞信号传导和存活至关重要。Retriever是由VPS35L、VPS26C和VPS29组成的三聚体复合物,与包含CCDC22、CCDC93和COMMD蛋白的CCC复合物一起,在这一过程中发挥关键作用。Retriever组装及其与CCC相互作用的精确机制仍不清楚。在此,我们展示了利用低温电子显微镜确定的Retriever的首个高分辨率结构。该结构揭示了一种独特的组装机制,使其有别于其远亲旁系同源物Retromer。通过结合AlphaFold预测以及生化、细胞和蛋白质组学分析,我们进一步阐明了整个Retriever-CCC复合物的结构组织,并揭示了癌症相关突变如何破坏复合物形成并损害膜蛋白稳态。这些发现为理解与Retriever-CCC介导的内体循环相关的生物学和病理学意义提供了一个基本框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/542c/10274727/2031f0b7f052/nihpp-2023.06.06.543888v1-f0009.jpg

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