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Human In Vitro Suppression as Screening Tool for the Recognition of an Early State of Immune Imbalance
Published on: July 22, 2011
The identification of a novel T cell activation state controlled by a diabetogenic gene
J K Moore1, R I Scheinman, D Bellgrau
1Department of Immunology, Barbara Davis Center for Childhood Diabetes, School of Medicine, University of Colorado Health Sciences Center, Denver, CO 80262, USA.
Abstract:
The cyclin-dependent kinase inhibitor p27(kip) regulates the cell cycle at the G(1)-S phase restriction point. S phase entry and cell cycle commitment in peripheral T cells requires p27(kip) degradation, normally initiated by the receipt of costimulatory signals such as those provided by B7.1 or IL-2. We have previously reported that T cells from BioBreeding (BB)-diabetes-prone (DP) rats exhibit decreased costimulatory requirements for activation and cell cycle entry. In the present study, we find that peripheral T cell subsets from BB-DP rats demonstrate activation-like characteristics, including significantly reduced levels of p27(kip) as well as increased levels of proliferating cell nuclear Ag (PCNA). Since our previous studies have established that expression of extracellular activation markers are relatively low in unmanipulated peripheral BB-DP T cells; this p27(low) PCNA(high) phenotype represents a novel activation state. Analyses of T cell subsets from congenic rats demonstrate that this phenotype segregates with the lyp diabetogenic locus and that the p27(low) PCNA(high) phenotype is T cell specific. This p27(low) PCNA(high) phenotype is not seen in medullary thymocytes, but appears abruptly in the recent thymic emigrant population, suggesting that the lyp locus does not act directly on cell cycle regulators but rather alters the interaction between T cells and the peripheral environment. These results provide a biochemical basis for costimulation-independent activation and suggest a mechanism whereby a diabetes susceptibility gene contributes to disease development.
Insights
T cells from diabetes-prone rats show a novel activation state with low p27(kip) and high proliferating cell nuclear antigen (PCNA). This phenotype, linked to a diabetes susceptibility gene, suggests altered T cell-environment interactions.
Area of Science:
- Immunology
- Cell Biology
- Endocrinology
Background:
- The cell cycle regulator p27(kip) is crucial for T cell activation, requiring degradation for cell cycle commitment.
- Costimulatory signals like B7.1 or IL-2 typically initiate p27(kip) degradation in T cells.
- T cells from BioBreeding (BB)-diabetes-prone (DP) rats have previously shown reduced costimulatory needs for activation.
Purpose of the Study:
- To investigate the cell cycle characteristics of peripheral T cells in BB-DP rats.
- To identify the underlying mechanisms of altered T cell activation in BB-DP rats.
- To determine the role of the lyp diabetogenic locus in T cell phenotype.
Main Methods:
- Flow cytometry analysis of T cell subsets.
- Quantification of p27(kip) and proliferating cell nuclear antigen (PCNA) levels.
- Analysis of congenic rats to assess genetic linkage of the phenotype.
Main Results:
- Peripheral T cells from BB-DP rats exhibit a novel p27(low) PCNA(high) phenotype, indicative of an activation state.
- This phenotype is T cell-specific and not observed in medullary thymocytes.
- The p27(low) PCNA(high) phenotype segregates with the lyp diabetogenic locus in congenic rats, appearing in recent thymic emigrants.
Conclusions:
- The lyp locus influences T cell activation independently of direct cell cycle regulation.
- Altered T cell-environment interactions, driven by the lyp locus, contribute to a unique T cell activation state.
- This provides a biochemical basis for costimulation-independent T cell activation and a potential mechanism for diabetes development.
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