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February 19, 2026The EMBO Journal1 citationsOpen Access

Hybrid endosomal coats contain different classes of sorting nexins

NGNavin GopaldassSCSudeshna Roy ChowdhuryAAAna Catarina Alves

Key Points

  • The study aims to explore how hybrid endosomal coats formed by different sorting nexins impact protein sorting mechanisms.
  • Investigated the formation of hybrid coats using purified SNX-BARs and Snx3.
  • Analyzed structural differences and membrane association modes of different sorting nexins.
  • Assessed the impact of hybrid coats on cargo sorting in cellular environments.
  • Hybrid endosomal coats show greater membrane-scaffolding activity compared to homogeneous coats.
  • Co-localization of Snx3 and SNX-BARs was observed, indicating interaction in cargo sorting.
  • Hybrid coats allow for stoichiometrically adaptable configurations for varying cargo transport.

Abstract

Abstract Endosomes are protein sorting stations, where multiple membrane coats form tubulovesicular carriers exporting proteins to the Golgi, the plasma membrane, or endo-lysosomal compartments. Distinct classes of sorting nexins are assumed to form distinct homogeneous coats that define the endosomal sorting routes and their cargos. Snx3 and the SNX-BAR proteins Vps5-Vps17 belong to different sorting-nexin classes. They can form homogeneous retromer-dependent coats that differ in structure and in their modes of membrane association and cargo recognition. Here, we describe the formation of hybrid coats between purified SNX-BARs, Snx3, and their cargos. Hybrid coats assemble at variable subunit ratios and diameters and show greater membrane-scaffolding activity than homogeneous coats. In vivo, Snx3 and SNX-BARs co-localise and mutually impact the sorting of their respective cargos. Although simultaneous binding of Snx3- and SNX-BARs to Retromer is sterically prohibited, hybrid coats incorporate both SNXs in a common complex, probably linked by retromer oligomerisation. We hence propose that SNX-BARs and Snx3 form retromer-mediated hybrid coats in novel, stoichiometrically adaptable configurations that allow the adjustment of endosomal carriers for transporting varying ratios of cargo.

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Cite This Study

Gopaldass et al. (2026) studied this question.

synapsesocial.com/papers/6996a818ecb39a600b3ee88ahttps://doi.org/10.1038/s44318-026-00716-0
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1The cytoplasmic tail domain of the vacuolar protein sorting receptor Vps10p and a subset of VPS gene products regulate receptor stability, function, and localization.1995 · 160 citations
  2. 2Recycling Endosomes of Polarized Epithelial Cells Actively Sort Apical and Basolateral Cargos into Separate Subdomains2007 · 79 citations
  3. 3A Comprehensive Comparison of Transmembrane Domains Reveals Organelle-Specific Properties2010 · 588 citations
  4. 4A mechanism for retromer endosomal coat complex assembly with cargo2013 · 169 citations
  5. 5Molecular identification of a BAR domain-containing coat complex for endosomal recycling of transmembrane proteins2019 · 140 citations