Functional and dysfunctional T regulatory cell states in human tissues in RA and other autoimmune arthritic diseases 2334965

S Shani Gal Oz (Brigham and Women’s Hospital, Harvard Medical School) B Byunghee Koh (Brigham and Women’s Hospital) R Ryota Sato H Hung Nguyen G Garrett Dunlap (Brigham and Women’s Hospital) C Christopher Mahony (University of Birmingham) C Chrissy Bolton (University of Birmingham) L Lucy Wedderburn A Adam Croft (University of Birmingham) L Laura Donlin S Soumya Raychaudhuri I Ilya Korsunsky D Deepak Rao M Michael Brenner (Department of Physics)

Abstract

Abstract Introduction Regulatory T cells (Tregs), characterized by FOXP3 expression, are essential for maintaining immune homeostasis by controlling inflammation. However, in autoimmune diseases such as rheumatoid arthritis (RA), impaired Treg function contributes to immune dysregulation and disease pathology. The phenotype of impaired Treg function in RA and other autoimmune diseases remains unknown. Methods We employed unbiased paired single cell RNA-sequencing (scRNAseq) and T cell receptor (TCR)-seq analysis of Tregs from synovial tissue, synovial fluid, and blood from 79 RA patients and blood from 5 healthy donors in an integrated analysis. We mapped Tregs from additional inflammatory arthritic conditions, Juvenile Idiopathic Arthritis (JIA) and Psoriatic Arthritis (PsA), to evaluate the Treg heterogeneity across different conditions. Results We identified two predominant Treg states, CD25hiCXCR6pos Tregs with strong suppressive function, and CD25loAREGpos Tregs, a dysfunctional state exclusively enriched in synovial tissues but not in blood. Highly suppressive, CD25hi Tregs presented dynamic differentiation potential through high shared clones across different clusters. Computational and in vitro analyses revealed that cortisol induced AREG expression, suppressed glycolysis, and impaired the suppressive function of CD25loAREGpos Tregs. In contrast, CD25hiCXCR6pos Tregs were highly suppressive and showed coordinated abundance with macrophages in synovial tissue which promoted their functional suppressive state through membrane-bound TNFα signaling. These two Treg subsets were similarly found in the synovial tissue in JIA, indicating conserved mechanisms across arthritic diseases. Conclusion Together, our findings define distinct pathways driving divergent functional and dysfunctional Treg states in inflamed tissues and point to interventions that may prevent or reverse the development of the dysfunctional state. Funding Source This work was supported by NIH grants P01AI148102 to MBB, BK was supported by NIH grant T32AR007530-35. SGO was supported by NIH grant (P01AI148102), the Gordon and Llura Gund Foundation and Israeli Council of Higher Education. RS was supported by Mitsubi Topic Categories Immune Response Regulation: Cellular Mechanisms (IRC)

Article Details

Volume / Issue Vol. 215, Issue Supplement_1
Published August 01, 2026
ISSN 0022-1767
Publisher American Association of Immunologists

Authors (14)

S

Shani Gal Oz

Brigham and Women’s Hospital, Harvard Medical School

B

Byunghee Koh

Brigham and Women’s Hospital

R

Ryota Sato

H

Hung Nguyen

G

Garrett Dunlap

Brigham and Women’s Hospital

C

Christopher Mahony

University of Birmingham

C

Chrissy Bolton

University of Birmingham

L

Lucy Wedderburn

A

Adam Croft

University of Birmingham

L

Laura Donlin

S

Soumya Raychaudhuri

I

Ilya Korsunsky

D

Deepak Rao

M

Michael Brenner

Department of Physics