In silico identification of a β-adrenoceptor allosteric site that selectively augments canonical βAR-Gs signaling and function.

Sushrut D Shah, Christoffer Lind, Francesco De Pascali, Raymond B Penn, Alexander D MacKerell, Deepak A Deshpande

Journal: Proceedings of the National Academy of Sciences of the United States of America 2022;119(49):e2214024119

PMID: 36449547

Abstract

Activation of β-adrenoceptors (βARs) causes airway smooth muscle (ASM) relaxation and bronchodilation, and βAR agonists (β-agonists) are front-line treatments for asthma and other obstructive lung diseases. However, the therapeutic efficacy of β-agonists is limited by agonist-induced βAR desensitization and noncanonical βAR signaling involving β-arrestin that is shown to promote asthma pathophysiology. Accordingly, we undertook the identification of an allosteric site on βAR that could modulate the activity of β-agonists to overcome these limitations. We employed the site identification by ligand competitive saturation (SILCS) computational method to comprehensively map the entire 3D structure of in silico-generated βAR intermediate conformations and identified a putative allosteric binding site. Subsequent database screening using SILCS identified drug-like molecules with the potential to bind to the site. Experimental assays in HEK293 cells (expressing recombinant wild-type human βAR) and human ASM cells (expressing endogenous βAR) identified positive and negative allosteric modulators (PAMs and NAMs) of βAR as assessed by regulation of β-agonist-stimulation of cyclic AMP generation. PAMs/NAMs had no effect on β-agonist-induced recruitment of β-arrestin to βAR- or β-agonist-induced loss of cell surface expression in HEK293 cells expressing βAR. Mutagenesis analysis of βAR confirmed the SILCS identified site based on mutants of amino acids R131, Y219, and F282. Finally, functional studies revealed augmentation of β-agonist-induced relaxation of contracted human ASM cells and bronchodilation of contracted airways. These findings identify a allosteric binding site on the βAR, whose activation selectively augments β-agonist-induced Gs signaling, and increases relaxation of ASM cells, the principal therapeutic effect of β-agonists.

Address: Center for Translational Medicine, Jane and Leonard Korman Respiratory Institute, Philadelphia, PA 19107.; Department of Pharmaceutical Sciences, School of Pharmacy, University of Maryland Computer-Aided Drug Design Center, University of Maryland, Baltimore, MD 21201.; Department of Biochemistry and Molecular Biology, Thomas Jefferson University, Philadelphia, PA 19107.
Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.