Erlin1/2 Complex is a Dynamic Scaffold for Membrane Protein Sequestration and Microdomain Assembly on the Endoplasmic Reticulum
Yan, L.; Xu, Z.; Yao, Y.; Wang, X.; Wang, Y.; Ma, C.; Li, N.; Chen, X.; Gao, N.
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The SPFH (Stomatin, Prohibitin, Flotillin, and HflK/C) family of proteins are key scaffolding components involved in the organization of functional membrane microdomains (FMMs) across various subcellular membranes, including those of the endoplasmic reticulum (ER) and mitochondria, which are characterized by a low content of saturated lipids. Among this protein family, the erlin1/2 complex is specifically located on the ER membrane. Previous studies have shown that the erlin1/2 complex plays an essential role in the ER-associated degradation (ERAD) pathway, mediating the ubiquitin-dependent degradation of various proteins such as inositol 1,4,5-trisphosphate receptors (InsP3Rs), which are important calcium ion transporters on the ER membrane. However, the molecular mechanisms underlying erlin-mediated FMMs organization and its role in ERAD remain poorly understood. In this study, we determined the single-particle cryo-electron microscopy (cryo-EM) structure of the erlin1/2 complex under different detergent conditions. Our findings reveal that the erlin1/2 complex forms a 26-mer cage-like structure, composed of alternating erlin1 and erlin2 subunits. The erlin1/2 complex defines a nanodomain on the ER membrane, which could recruit various types of proteins to both the interior and exterior membrane regions of the cage. By caging cargo proteins, the erlin1/2 complex physically secludes them from their binding partners, leading to a potential halt in their function. Moreover, individual cages can further interact with one another, facilitating the organization of FMMs of different sizes on the ER membrane. These dynamic properties may play a general and critical role in various processes occurring on the ER, including viral replication, positioning the erlin1/2 complex as a promising new target for antiviral drug development.
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