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Updated: Feb 20, 2026

A Chromatin Immunoprecipitation Assay to Identify Novel NFAT2 Target Genes in Chronic Lymphocytic Leukemia
Published on: December 4, 2018
Src-family kinases negatively regulate NFAT signaling in resting human T cells
Alan Baer1, Winston Colon-Moran1, Jinhua Xiang2
1Division of Cellular and Gene Therapies, Office of Tissues and Advanced Therapies, Center for Biologics Evaluation and Research, Food and Drug Administration, Silver Spring, Maryland.
Abstract:
T cell signaling is required for activation of both natural and therapeutic T cells including chimeric antigen receptor (CAR) T cells. Identification of novel factors and pathways regulating T cell signaling may aid in development of effective T cell therapies. In resting human T cells, the majority of Src-family of tyrosine kinases (SFKs) are inactive due to phosphorylation of a conserved carboxy-terminal tyrosine residue. Recently, a pool of enzymatically active SFKs has been identified in resting T cells; however, the significance of these is incompletely understood. Here, we characterized the role of active SFKs in resting human T cells. Pharmacologic inhibition of active SFKs enhanced distal TCR signaling as measured by IL-2 release and CD25 surface expression following TCR-independent activation. Mechanistically, inhibition of the active pool of SFKs induced nuclear translocation of NFAT1, and enhanced NFAT1-dependent signaling in resting T cells. The negative regulation of NFAT1 signaling was in part mediated by the Src-kinase Lck as human T cells lacking Lck had increased levels of nuclear NFAT1 and demonstrated enhanced NFAT1-dependent gene expression. Inhibition of active SFKs in resting primary human T cells also increased nuclear NFAT1 and enhanced NFAT1-dependent signaling. Finally, the calcineurin inhibitor FK506 and Cyclosporin A reversed the effect of SFKs inhibition on NFAT1. Together, these data identified a novel role of SFKs in preventing aberrant NFAT1 activation in resting T cells, and suggest that maintaining this pool of active SFKs in therapeutic T cells may increase the efficacy of T cell therapies.
Insights
Active Src-family kinases (SFKs) normally prevent aberrant T cell activation. Inhibiting active SFKs in resting T cells enhances signaling, suggesting their role in maintaining T cell quiescence and potential therapeutic applications.
Area of Science:
- Immunology
- Cellular Signaling
- Molecular Biology
Background:
- T cell signaling is crucial for both natural and therapeutic T cells, like CAR T cells.
- Active Src-family kinases (SFKs) in resting T cells are poorly understood but may regulate signaling.
- Identifying novel T cell signaling regulators can improve T cell therapies.
Purpose of the Study:
- To investigate the role of active SFKs in regulating T cell signaling in resting human T cells.
- To determine if active SFKs prevent aberrant activation of NFAT1 signaling.
- To explore the therapeutic potential of modulating active SFKs in T cell therapies.
Main Methods:
- Pharmacologic inhibition of active SFKs in primary human T cells.
- Measurement of IL-2 release and CD25 surface expression.
- Assessment of NFAT1 nuclear translocation and gene expression.
- Analysis of Lck-deficient T cells and calcineurin inhibitors (FK506, Cyclosporin A).
Main Results:
- Inhibition of active SFKs enhanced distal T cell receptor (TCR) signaling, including IL-2 release and CD25 expression.
- Active SFK inhibition promoted NFAT1 nuclear translocation and enhanced NFAT1-dependent signaling in resting T cells.
- Lck deficiency led to increased nuclear NFAT1 and enhanced NFAT1-dependent gene expression.
- FK506 and Cyclosporin A reversed the effects of SFK inhibition on NFAT1.
Conclusions:
- Active SFKs play a novel role in preventing aberrant NFAT1 activation in resting T cells.
- Maintaining active SFKs in therapeutic T cells may enhance their efficacy.
- Targeting SFKs could be a strategy to improve T cell-based therapies.
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