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Functional immune profiling reveals CD4+ T cell dysregulation in coeliac disease
Anthony J Farchione1,2, HoChan Cheon1, David Vremec1
1Walter and Eliza Hall Institute of Medical Research, Parkville, VIC, Australia.
Insights
Coeliac disease (CeD) involves T-cell dysfunction, impacting immune responses even without active inflammation. New methods reveal intrinsic T-cell programming alterations linked to CeD, offering insights into autoimmune diseases.
Area of Science:
- Immunology
- Autoimmune Diseases
- Cellular Biology
Background:
- Coeliac disease (CeD) is an autoimmune disorder triggered by gluten, with known genetic risks and immune dysregulation.
- The translation of genetic risk into specific functional variations within naïve T-cells in CeD is poorly understood.
Purpose of the Study:
- To investigate cell-intrinsic functional variations in naïve T-cells from individuals with CeD.
- To develop and apply a novel assay for quantitative functional profiling of T-cells.
Main Methods:
- Development of the T-cell momentum assay, a quantitative platform for profiling T-cell activation dynamics after stimulus withdrawal.
- Integration of the assay with the Cyton2 mathematical model to infer cellular fate programs from population dynamics.
- Application of the assay to naïve T-cells from CeD patients and healthy donors (HDs).
Main Results:
- Disease-associated abnormalities were identified predominantly in CD4+ T-cells from CeD individuals, including hypoproliferation, reduced IL-2 secretion, impaired survival, and delayed CD69 downregulation.
- Distinct early alterations were also observed in CD8+ T-cells.
- These T-cell abnormalities were present in both newly diagnosed CeD patients and those on a gluten-free diet, suggesting a persistent, cell-intrinsic phenotype.
Conclusions:
- Naïve T-cell programming alterations in CeD are revealed, linking inherited immune variations to functional dysregulation beyond antigen-specific responses.
- The findings suggest a cell-intrinsic immune dysfunction in CeD not solely due to active inflammation.
- The momentum assay provides a scalable, model-informed framework for detecting early T-cell dysregulation and stratifying immune variation in autoimmune diseases.
Abstract:
T cells integrate signals from antigen and costimulatory receptors to calibrate response magnitude and quality, with genetically encoded programs shaping activation thresholds for immune tolerance and feedback regulation. Coeliac disease (CeD) is an autoimmune disorder with well-defined genetic risk and immune dysregulation triggered by dietary gluten. However, how genetic risk translates into cell-intrinsic functional variation, particularly within the naïve T-cell compartment, remains poorly defined. Here, we developed the T cell momentum assay, a quantitative functional profiling platform combining standardized T-cell activation with defined stimulus withdrawal to measure proliferation, survival and activation dynamics over time. Integrated with the Cyton2 mathematical model, this approach infers cellular fate programs from population-level dynamics, enabling high-resolution analysis of intrinsic T-cell behavior. Applying this assay to naïve T cells from individuals with CeD and healthy donors (HDs), we identified disease-associated abnormalities predominantly in CD4+ T cells, including hypoproliferation, reduced IL-2 secretion, impaired survival and delayed downregulation of CD69, indicating prolonged activation and impaired feedback regulation. Distinct early alterations in CD8+ T cells were also observed. These abnormalities were present in both newly diagnosed individuals and those on a gluten-free diet, supporting a cell-intrinsic phenotype not solely attributable to active inflammation and is consistent with altered baseline immune function. Together, our findings reveal previously unrecognized alterations in naïve T-cell programming in CeD, linking inherited immune variation to functional dysregulation beyond antigen-specific responses. More broadly, the momentum assay offers a scalable, model-informed framework to detect subtle early T cell dysregulation and functionally stratify immune variation across autoimmune diseases.
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