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bioRxiv · 10.1101/2022.08.02.502487

Coupling of protein condensates to ordered lipid domains determines functional membrane organization

Abstract

During T-cell activation, the transmembrane adaptor Linker of Activation of T-cells (LAT) forms biomolecular condensates with Grb2 and Sos1, facilitating signaling. LAT has also been associated with cholesterol-rich condensed lipid domains. However, the potential coupling between protein condensation and lipid phase separation and its role in organizing T-cell signaling were unknown. Here, we report that LAT/Grb2/Sos1 condensates reconstituted on model membranes can induce and template lipid domains, indicating strong coupling between lipid- and protein-based phase separation. Correspondingly, activation of T-cells induces protein condensates that associate with and stabilize raft-like membrane domains. Inversely, lipid domains nucleate and stabilize LAT protein condensates in both reconstituted and living systems. This coupling of lipid and protein assembly is functionally important, since uncoupling of lipid domains from cytoplasmic protein condensates abrogates T-cell activation. Thus, thermodynamic coupling between protein condensates and ordered lipid domains regulates the functional organization of living membranes. SUMMARYMembrane-associated protein condensates couple to ordered membrane domains to determine the functional organization of T-cell plasma membranes

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BibTeXRIS

Wang, H.-Y., Chan, S. H., Dey, S., Castello-Serrano, I., Ditlev, J., Rosen, M. K., Levental, K. R., Levental, I.. 2022-08-03. Coupling of protein condensates to ordered lipid domains determines functional membrane organization. https://doi.org/10.1101/2022.08.02.502487

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