Small-molecule modulation of β-arrestins

A Alem W. Kahsai N Natalia Pakharukova H Henry Y. Kwon K Kunal S. Shah C Caroline T. del Real B Bowie N. Shreiber J Jason G. Liang-Lin P Paul J. Shim M Mason A. Lee V Van A. Ngo A Allison M. Schwalb U Uyen Pham A Anand Chundi H Haoran Jiang E Emmanuel Flores-Espinoza S Samuel Liu P Preston C. Nibley D Dana K. Bassford H Hyunggu Hahn C Cal A. Kunzle B Brittany N. Thomas J Jihee Kim Y Yang Zhou J Jialu Wang X Xingdong Zhang J Jeffrey S. Smith L Lindsay A. M. Rein A Alex R. B. Thomsen S Sudha K. Shenoy S Sudarshan Rajagopal L Lei Shi (School of Health Management Guangzhou Medical University Guangzhou China) S Seungkirl Ahn H Howard A. Rockman A Ali Masoudi R Robert J. Lefkowitz

Abstract

Abstract β-Arrestins are multifunctional regulators of G-protein-coupled receptor (GPCR) signalling and orchestrate diverse downstream signalling events and physiological responses across the GPCR superfamily 1–3 . 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.

Article Details

Journal Nature
Volume / Issue Vol. 1, Issue 1
Published June 24, 2026
ISSN 0028-0836
Publisher Nature Portfolio

Journal Info

Nature

Nature Portfolio

ISSN: 0028-0836 Health Sciences

Authors (35)

A

Alem W. Kahsai

N

Natalia Pakharukova

H

Henry Y. Kwon

K

Kunal S. Shah

C

Caroline T. del Real

B

Bowie N. Shreiber

J

Jason G. Liang-Lin

P

Paul J. Shim

M

Mason A. Lee

V

Van A. Ngo

A

Allison M. Schwalb

U

Uyen Pham

A

Anand Chundi

H

Haoran Jiang

E

Emmanuel Flores-Espinoza

S

Samuel Liu

P

Preston C. Nibley

D

Dana K. Bassford

H

Hyunggu Hahn

C

Cal A. Kunzle

B

Brittany N. Thomas

J

Jihee Kim

Y

Yang Zhou

J

Jialu Wang

X

Xingdong Zhang

J

Jeffrey S. Smith

L

Lindsay A. M. Rein

A

Alex R. B. Thomsen

S

Sudha K. Shenoy

S

Sudarshan Rajagopal

L

Lei Shi

School of Health Management Guangzhou Medical University Guangzhou China

S

Seungkirl Ahn

H

Howard A. Rockman

A

Ali Masoudi

R

Robert J. Lefkowitz