Increased Nur77 is disconnected from TCR affinity in insulin-specific Tregs
Abstract
Abstract Foxp3+ regulatory T cells (Tregs) are capable suppressors of aberrant self-reactivity. However, how differences in affinity and specificity may support Treg function compared with autoimmune T cell function remains unresolved. In this study, we analyzed the T cell receptor (TCR) repertoires of the regulatory and effector T cells that spontaneously infiltrate pancreatic islets of nonobese diabetic mice and therefore share antigen specificity. Using 2-dimensional micropipette measurements of TCR affinity, we show that effector and regulatory T cell-derived TCRs possess similar wide-ranging affinities for self-antigen. Treg-derived TCRs conferred variable protective function and Treg suppressive capacity was, in part, determined by the relative antigen-reactivity of effector T cells. Interestingly, when expressing the same TCR, Tregs showed higher Nur77-GFP expression than effector T cells in vivo, suggesting a Treg-intrinsic ability to compete for antigen. In vitro, we observed accelerated Treg TCR activation, suggesting that Tregs are poised for faster response to antigen than T effectors. Our findings expose a subpopulation of Tregs possessing low-affinity, suboptimal TCRs, obscured by apparent higher Nur77 expression in Tregs as a whole.
Article Details
Journal Info
The Journal of Immunology
American Association of Immunologists
Authors (11)
Yi Jing
Yuelin Kong
Baoyu Liu
The University of Utah
Elizabeth Kolawole
University of Utah
Tessa Galland
Department of Pathology, Division of Microbiology and Immunology, University of Utah , Salt Lake City, UT,
Luke G Gillen
Department of Pathology, Division of Microbiology and Immunology, University of Utah , Salt Lake City, UT,
Maren Kenison
Department of Pathology, Division of Microbiology and Immunology, University of Utah , Salt Lake City, UT,
Maran Sprouse
Section of Diabetes and Endocrinology, Department of Pediatrics, Texas Children’s Hospital, Baylor College of Medicine , Houston, TX,
Brian D Evavold
Department of Pathology, Division of Microbiology and Immunology, University of Utah , Salt Lake City, UT,
Matthew L Bettini
Department of Pathology, Division of Microbiology and Immunology, University of Utah , Salt Lake City, UT,
Maria Bettini
maria.bettini@path.utah.edu