TY - JOUR
T1 - Small-molecule modulation of β-arrestins
AU - Kahsai, Alem W.
AU - Pakharukova, Natalia
AU - Kwon, Henry Y.
AU - Shah, Kunal S.
AU - del Real, Caroline T.
AU - Shreiber, Bowie N.
AU - Liang-Lin, Jason G.
AU - Shim, Paul J.
AU - Lee, Mason A.
AU - Ngo, Van A.
AU - Schwalb, Allison M.
AU - Pham, Uyen
AU - Chundi, Anand
AU - Jiang, Haoran
AU - Flores-Espinoza, Emmanuel
AU - Liu, Samuel
AU - Nibley, Preston C.
AU - Bassford, Dana K.
AU - Hahn, Hyunggu
AU - Kunzle, Cal A.
AU - Thomas, Brittany N.
AU - Kim, Jihee
AU - Zhou, Yang
AU - Wang, Jialu
AU - Zhang, Xingdong
AU - Smith, Jeffrey S.
AU - Rein, Lindsay A.M.
AU - Thomsen, Alex R.B.
AU - Shenoy, Sudha K.
AU - Rajagopal, Sudarshan
AU - Shi, Lei
AU - Ahn, Seungkirl
AU - Rockman, Howard A.
AU - Masoudi, Ali
AU - Lefkowitz, Robert J.
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026
Y1 - 2026
N2 - β-Arrestins are multifunctional regulators of G-protein-coupled receptor (GPCR) signalling and orchestrate diverse downstream signalling events and physiological responses across the GPCR superfamily1, 2–3. Although GPCR pharmacology has advanced to target orthosteric and allosteric sites, as well as G proteins and GPCR kinases, direct chemical tools to modulate β-arrestin activities have remained conspicuously absent. Here we report the identification of small-molecule inhibitors that selectively target β-arrestins and delineate their mechanism of action through integrated pharmacological, biochemical, biophysical and structural analyses. These inhibitors disrupt β-arrestin engagement with agonist-activated GPCRs, impairing desensitization, internalization and β-arrestin-dependent physiological functions while sparing G protein–receptor coupling. Cryo-electron microscopy, molecular dynamics simulations and structure-guided mutagenesis reveal that one modulator, Cmpd-5, engages a pocket within the central crest of β-arrestin1 formed by the middle, C and lariat loops, a critical receptor-binding interface, stabilizing a distinct conformation that is incompatible with full β-arrestin–receptor engagement. Together, these findings establish a mechanistic framework for β-arrestin modulation, reveal a novel allosteric site for structure-based drug design, and open new avenues for transducer-targeted, pathway-specific GPCR therapeutic agents.
AB - β-Arrestins are multifunctional regulators of G-protein-coupled receptor (GPCR) signalling and orchestrate diverse downstream signalling events and physiological responses across the GPCR superfamily1, 2–3. Although GPCR pharmacology has advanced to target orthosteric and allosteric sites, as well as G proteins and GPCR kinases, direct chemical tools to modulate β-arrestin activities have remained conspicuously absent. Here we report the identification of small-molecule inhibitors that selectively target β-arrestins and delineate their mechanism of action through integrated pharmacological, biochemical, biophysical and structural analyses. These inhibitors disrupt β-arrestin engagement with agonist-activated GPCRs, impairing desensitization, internalization and β-arrestin-dependent physiological functions while sparing G protein–receptor coupling. Cryo-electron microscopy, molecular dynamics simulations and structure-guided mutagenesis reveal that one modulator, Cmpd-5, engages a pocket within the central crest of β-arrestin1 formed by the middle, C and lariat loops, a critical receptor-binding interface, stabilizing a distinct conformation that is incompatible with full β-arrestin–receptor engagement. Together, these findings establish a mechanistic framework for β-arrestin modulation, reveal a novel allosteric site for structure-based drug design, and open new avenues for transducer-targeted, pathway-specific GPCR therapeutic agents.
UR - https://www.scopus.com/pages/publications/105043040230
U2 - 10.1038/s41586-026-10683-5
DO - 10.1038/s41586-026-10683-5
M3 - Article
AN - SCOPUS:105043040230
SN - 0028-0836
JO - Nature
JF - Nature
ER -