Structural Mechanisms of DNAJC13 Dimeric Assembly and InsP6 binding in Recycling Endosome Regulation
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The balance of plasma membrane protein degradation and recycling during endocytosis is regulated, in part, by the large J-domain-containing protein DNAJC13/RME-8 and WASH complexes, which function together with Retromer to support cargo trafficking into recycling endosomes. Despite extensive cellular and biochemical studies, the structural basis and proteomic landscape of DNAJC13 function remain elusive. Here, we find that DNAJC13 forms an unexpected antiparallel homodimeric architecture involving distinctive symmetrical interactions between composite IWN1 and α-solenoid ARM2 domains in each protomer. Additionally, two PH-like domains of unknown function (PHL2 and PHL3), adjacent to the PI(3)P-binding PHL1 domain, form an unanticipated composite, positively charged pocket occupied by InsP 6 , as visualized structurally and verified by mass spectrometry. Proteomic profiling of DNAJC13-associated endosomes revealed enrichment of recycling endosomal components and WASH complexes. Mutations disrupting the dimer interface disable recruitment of WASH complexes to endosomes and result in elongated endosomal tubulation. Disruption of InsP 6 binding impairs DNAJC13 binding to PI(3)P-containing vesicles in vitro and Transferrin-positive endosomes in cells. We further demonstrate that DNAJC13 dimerization and InsP 6 binding promote melanin production during melanosome maturation, a process known to require recycling endosomes. This work provides a structural and mechanistic framework for understanding DNAJC13 function in recycling endosome control.