内体
细胞生物学
信号转导衔接蛋白
拉布拉多猎犬
生物
膜蛋白
化学
信号转导
计算生物学
膜
生物化学
细胞内
医学
病理
作者
Daniel J. Boesch,Amika Singla,Yan Han,Daniel A. Kramer,Qi Liu,Kohei Suzuki,Puneet Juneja,Xuefeng Zhao,Xin Long,Michael J. Medlyn,Daniel D. Billadeau,Zhe Chen,Baoyu Chen,Ezra Burstein
标识
DOI:10.1038/s41594-023-01184-4
摘要
The recycling of membrane proteins from endosomes to the cell surface is vital for cell signaling and survival. Retriever, a trimeric complex of vacuolar protein-sorting-associated protein (VPS)35L, VPS26C and VPS29, together with the CCC complex comprising coiled-coil domain-containing (CCDC)22, CCDC93 and copper metabolism domain-containing (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 a high-resolution structure of retriever in humans 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 across evolution and uncover how cancer-associated mutations in humans 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. The study presents a high-resolution structure of the retriever complex and a model of the retriever–CCC assembly, providing a mechanistic framework for studying how retriever facilitates endosomal recycling of diverse membrane proteins.
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