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A BW Reporter System for Studying Receptor-Ligand Interactions
Published on: January 7, 2019
A cell topography-based mechanism for ligand discrimination by the T cell receptor
Ricardo A Fernandes1,2, Kristina A Ganzinger3, Justin C Tzou4
1Radcliffe Department of Medicine, John Radcliffe Hospital, University of Oxford, OX3 9DS Oxford, United Kingdom.
Abstract:
The T cell receptor (TCR) initiates the elimination of pathogens and tumors by T cells. To avoid damage to the host, the receptor must be capable of discriminating between wild-type and mutated self and nonself peptide ligands presented by host cells. Exactly how the TCR does this is unknown. In resting T cells, the TCR is largely unphosphorylated due to the dominance of phosphatases over the kinases expressed at the cell surface. However, when agonist peptides are presented to the TCR by major histocompatibility complex proteins expressed by antigen-presenting cells (APCs), very fast receptor triggering, i.e., TCR phosphorylation, occurs. Recent work suggests that this depends on the local exclusion of the phosphatases from regions of contact of the T cells with the APCs. Here, we developed and tested a quantitative treatment of receptor triggering reliant only on TCR dwell time in phosphatase-depleted cell contacts constrained in area by cell topography. Using the model and experimentally derived parameters, we found that ligand discrimination likely depends crucially on individual contacts being ∼200 nm in radius, matching the dimensions of the surface protrusions used by T cells to interrogate their targets. The model not only correctly predicted the relative signaling potencies of known agonists and nonagonists but also achieved this in the absence of kinetic proofreading. Our work provides a simple, quantitative, and predictive molecular framework for understanding why TCR triggering is so selective and fast and reveals that, for some receptors, cell topography likely influences signaling outcomes.
Insights
T cell receptor (TCR) triggering relies on dwell time in specific cell contact areas. This mechanism explains how TCRs rapidly and selectively identify foreign peptides without kinetic proofreading, influenced by cell topography.
Area of Science:
- Immunology
- Cellular Biology
- Biophysics
Background:
- The T cell receptor (TCR) is crucial for adaptive immunity, eliminating pathogens and tumors.
- TCRs must distinguish between self and non-self ligands to prevent autoimmune damage.
- Current understanding of TCR ligand discrimination mechanisms remains incomplete.
Purpose of the Study:
- To develop a quantitative model for TCR triggering based on dwell time and cell contact area.
- To investigate the role of cell topography in TCR-mediated signaling.
- To explain the rapid and selective nature of TCR activation.
Main Methods:
- Developed a quantitative model of TCR triggering incorporating TCR dwell time and phosphatase exclusion.
- Constrained T cell-APC contact areas using cell topography.
- Used experimentally derived parameters to test the model's predictions.
Main Results:
- Ligand discrimination is critically dependent on contact areas approximately 200 nm in radius.
- The model accurately predicted the signaling potencies of agonists and nonagonists.
- The model explained TCR triggering selectivity and speed without invoking kinetic proofreading.
Conclusions:
- Cell topography and contact area size are key determinants of TCR signaling outcomes.
- A quantitative framework based on dwell time provides a simple explanation for TCR selectivity.
- This model offers insights into the molecular mechanisms underlying T cell activation and immune surveillance.
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