Single-molecule analysis of receptor-beta-arrestin interactions in living cells
Grimes, J.; Koszegi, Z.; Lanoiselee, Y.; Miljus, T.; O'Brien, S. L.; Stepniewski, T. M.; Medel-Lacruz, B.; Baidya, M.; Makarova, M.; Owen, D. M.; Shukla, A. K.; Selent, J.; Hill, S. J.; Calebiro, D.
Show abstract
{beta}-arrestin plays a key role in G protein-coupled receptor (GPCR) signaling and desensitization. Despite recent structural advances, the mechanisms that govern receptor-{beta}-arrestin interactions at the plasma membrane of living cells remain elusive. Here, we combine single-molecule microscopy with molecular dynamics simulations to dissect the complex sequence of events involved in {beta}-arrestin interactions with both receptors and the lipid bilayer. In contrast to the currently widely accepted model, we show that {beta}-arrestin spontaneously inserts into the lipid bilayer and transiently interacts with receptors via lateral diffusion on the plasma membrane. Moreover, we show that following receptor interaction, the plasma membrane stabilizes {beta}-arrestin in a membrane-bound, active-like conformation, allowing it to diffuse to clathrin coated pits separately from the activating receptor. These results challenge our current understanding of {beta}-arrestin function at the plasma membrane, revealing a new critical role for {beta}-arrestin pre-association with the lipid bilayer in facilitating its interactions with receptors and subsequent activation.
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