Nanomedicines targeting protease-activated receptor 2 in endosomes provide sustained analgesia

S Shavonne L. Teng (Department of Molecular Pathobiology, College of Dentistry, New York University) R Rocco Latorre (Department of Molecular Pathobiology, College of Dentistry, New York University) D Divya Bhansali (Department of Biomedical Engineering, Columbia University) P Parker K. Lewis (Pain Research Center, College of Dentistry, New York University) R Rachel E. Pollard (Pain Research Center, College of Dentistry, New York University) C Chloe J. Peach (Department of Molecular Pathobiology, College of Dentistry, New York University) B Badr Sokrat (Department of Molecular Pathobiology, College of Dentistry, New York University) G Gokul Sriman Thanigai Arasu (Department of Molecular Pathobiology, College of Dentistry, New York University) T Tracy Chiu (Department of Molecular Pathobiology, College of Dentistry, New York University) P Paz Duran (Department of Molecular Pathobiology, College of Dentistry, New York University) N Nestor N. Jimenez-Vargas (Gastrointestinal Diseases Research Unit, Division of Gastroenterology, Queen’s University) A Abby Mocherniak (Gastrointestinal Diseases Research Unit, Division of Gastroenterology, Queen’s University) M Matthew Bogyo M Michael M. Gaspari (Section of Gastroenterology, Wake Forest University School of Medicine) S Stephen J. Vanner (Gastrointestinal Diseases Research Unit, Division of Gastroenterology, Queen’s University) N Nathalie M. Pinkerton (Pain Research Center, College of Dentistry, New York University) K Kam W. Leong (Department of Biomedical Engineering) B Brian L. Schmidt (Department of Molecular Pathobiology, College of Dentistry, New York University) D Dane D. Jensen (Department of Molecular Pathobiology, College of Dentistry, New York University) N Nigel W. Bunnett (Department of Molecular Pathobiology, College of Dentistry, New York University)

Abstract

Although many internalized G protein-coupled receptors (GPCRs) continue to signal, the mechanisms and outcomes of intracellular GPCR signaling are uncertain due to the challenges of measuring organelle-specific signals and of selectively antagonizing receptors in intracellular compartments. Herein, genetically encoded biosensors targeted to the plasma membrane and early endosomes were used to analyze compartmentalized signaling of protease-activated receptor 2 (PAR 2 ); the propensity of nanoparticles (NPs) to accumulate in endosomes was leveraged to preferentially antagonize intracellular PAR 2 signaling of pain. PAR 2 agonists evoked sustained activation of PAR 2 , Gαq, and β-arrestin-1 in early endosomes and activated extracellular signal regulated kinase (ERK) in the cytosol and nucleus, measured with targeted biosensors. Fluorescent dendrimer and core-shell polymeric NPs accumulated in endosomes of HEK293T cells, colonic epithelial cells, and nociceptors, detected by confocal microscopy. NPs efficiently encapsulated and slowly released AZ3451, a negative allosteric PAR 2 modulator. NP-encapsulated AZ3451, but not unencapsulated AZ3451, rapidly and completely reversed PAR 2 , Gαq, and β-arrestin-1 activation in early endosomes and ERK activation in the cytosol and nucleus. When administered into the mouse colon lumen, fluorescent dendrimer NPs accumulated in endosomes of colonocytes and polymeric NPs accumulated in neurons, sites of PAR 2 expression. Both NP formulations of AZ3451, but not unencapsulated AZ3451, caused long-lasting analgesia and normalized aberrant behavior in preclinical models of inflammatory bowel disease. These results provide evidence that PAR 2 endosomal signaling mediates pain and that nanomedicines that antagonize PAR 2 in endosomes effectively relieve pain. NP-mediated delivery may improve the efficacy of other GPCR antagonists for treatment of diverse diseases.

Article Details

Volume / Issue Vol. 122, Issue 41
Published October 14, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (20)

S

Shavonne L. Teng

Department of Molecular Pathobiology, College of Dentistry, New York University

R

Rocco Latorre

Department of Molecular Pathobiology, College of Dentistry, New York University

D

Divya Bhansali

Department of Biomedical Engineering, Columbia University

P

Parker K. Lewis

Pain Research Center, College of Dentistry, New York University

R

Rachel E. Pollard

Pain Research Center, College of Dentistry, New York University

C

Chloe J. Peach

Department of Molecular Pathobiology, College of Dentistry, New York University

B

Badr Sokrat

Department of Molecular Pathobiology, College of Dentistry, New York University

G

Gokul Sriman Thanigai Arasu

Department of Molecular Pathobiology, College of Dentistry, New York University

T

Tracy Chiu

Department of Molecular Pathobiology, College of Dentistry, New York University

P

Paz Duran

Department of Molecular Pathobiology, College of Dentistry, New York University

N

Nestor N. Jimenez-Vargas

Gastrointestinal Diseases Research Unit, Division of Gastroenterology, Queen’s University

A

Abby Mocherniak

Gastrointestinal Diseases Research Unit, Division of Gastroenterology, Queen’s University

M

Matthew Bogyo

M

Michael M. Gaspari

Section of Gastroenterology, Wake Forest University School of Medicine

S

Stephen J. Vanner

Gastrointestinal Diseases Research Unit, Division of Gastroenterology, Queen’s University

N

Nathalie M. Pinkerton

Pain Research Center, College of Dentistry, New York University

K

Kam W. Leong

Department of Biomedical Engineering

B

Brian L. Schmidt

Department of Molecular Pathobiology, College of Dentistry, New York University

D

Dane D. Jensen

Department of Molecular Pathobiology, College of Dentistry, New York University

N

Nigel W. Bunnett

Department of Molecular Pathobiology, College of Dentistry, New York University