Activation pathway of a G protein-coupled receptor uncovers conformational intermediates as targets for allosteric drug design.

Lu, Shaoyong; He, Xinheng; Yang, Zhao; Chai, Zongtao; Zhou, Shuhua; Wang, Junyan; Rehman, Ashfaq Ur; Ni, Duan et al. · Nat Commun · 2021

basic_science · Level V

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Abstract

G protein-coupled receptors (GPCRs) are the most common proteins targeted by approved drugs. A complete mechanistic elucidation of large-scale conformational transitions underlying the activation mechanisms of GPCRs is of critical importance for therapeutic drug development. Here, we apply a combined computational and experimental framework integrating extensive molecular dynamics simulations, Markov state models, site-directed mutagenesis, and conformational biosensors to investigate the conformational landscape of the angiotensin II (AngII) type 1 receptor (AT<sub>1</sub> receptor) - a prototypical class A GPCR-activation. Our findings suggest a synergistic transition mechanism for AT<sub>1</sub> receptor activation. A key intermediate state is identified in the activation pathway, which possesses a cryptic binding site within the intracellular region of the receptor. Mutation of this cryptic site prevents activation of the downstream G protein signaling and β-arrestin-mediated pathways by the endogenous AngII octapeptide agonist, suggesting an allosteric regulatory mechanism. Together, these findings provide a deeper understanding of AT<sub>1</sub> receptor activation at an atomic level and suggest avenues for the design of allosteric AT<sub>1</sub> receptor modulators with a broad range of applications in GPCR biology, biophysics, and medicinal chemistry.

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