Related Experiment Video
Updated: Sep 20, 2026

Mouse Naïve CD4+ T Cell Isolation and In vitro Differentiation into T Cell Subsets
Published on: April 16, 2015
DGKα and ζ deficiency causes regulatory T-cell dysregulation, destabilization, and conversion to pathogenic
Lei Li1, Hongxiang Huang1, Hongxia Wang1
1Department of Pediatrics-Allergy and Immunology, Duke University Medical Center, Durham, United States.
Abstract:
Regulatory T cells (Tregs) actively engage in immune suppression to prevent autoimmune diseases, but also inhibit anti-tumor immunity. Although Tregs express a TCR repertoire with relatively high affinities to self, they are normally quite stable, and their inflammatory programs are intrinsically suppressed. We report here that diacylglycerol kinases (DGK) α and ζ are crucial for homeostasis, suppression of proinflammatory programs, and stability of Tregs, and for enforcing their dependence on CD28 costimulatory signal. Treg-specific deficiency of both DGKα and ζ derails signaling, metabolic, and transcriptional programs in Tregs to cause dysregulated phenotypic and functional properties and to unleash conversion to pathogenic exTregs, especially exTreg-T follicular helper (Tfh) 2 cells, leading to uncontrolled effector T cell differentiation, deregulated germinal center B-cell responses, and IgG1/IgE predominant antibodies/autoantibodies, and multiorgan autoimmune diseases. Our data not only illustrate the crucial roles of DGKs in Tregs to maintain self-tolerance, but also unveil a Treg-to-self-reactive-pathogenic-exTreg-Tfh-cell program that is suppressed by DGKs and that could exert broad pathogenic roles in autoimmune diseases if unchecked.
Related Concept Videos
Type I Diabetes I: Introduction
Type I Diabetes II: Pathophysiology
T Cell Types and Functions
Th1 cells stimulate dendritic cells to express necessary co-stimulatory molecules on their surfaces for...
Inflammatory Bowel Disease III: Crohn's Disease
Autoimmune Disorders
Concept and Mechanism of Autoimmune Diseases
The immune system...
Hypersensitivity Reactions: Delayed Hypersensitivity Reactions
