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.

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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