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Updated: May 3, 2026

Use of Single Chain MHC Technology to Investigate Co-agonism in Human CD8+ T Cell Activation
Published on: February 28, 2019
MMTV superantigens coerce an unconventional topology between the TCR and MHC class II
Jean-Simon Fortin1, Laetitia Genève, Catherine Gauthier
1Laboratoire d'Immunologie Moléculaire, Département de Microbiologie, Infectiologie et Immunologie, Université de Montréal, Montreal, Quebec HC3 3J7, Canada;
Abstract:
Mouse mammary tumor virus superantigens (vSAGs) are notorious for defying structural characterization, and a consensus has yet to be reached regarding their ability to bridge the TCR to MHC class II (MHCII). In this study, we determined the topology of the T cell signaling complex by examining the respective relation of vSAG7 with the MHCII molecule, MHCII-associated peptide, and TCR. We used covalently linked peptide/MHCII complexes to demonstrate that vSAG presentation is tolerant to variation in the protruding side chains of the peptide, but can be sensitive to the nature of the protruding N-terminal extension. An original approach in which vSAG was covalently linked to either MHCII chain confirmed that vSAG binds outside the peptide binding groove. Also, whereas the C-terminal vSAG segment binds to the MHCII α-chain in a conformation-sensitive manner, the membrane-proximal N-terminal domain binds the β-chain. Because both moieties of the mature vSAG remain noncovalently associated after processing, our results suggest that vSAG crosslinks MHCII molecules. Comparing different T cell hybridomas, we identified key residues on the MHCII α-chain that are differentially recognized by the CDR3β when engaged by vSAG. Finally, we show that the highly conserved tyrosine residue found in the vSAg TGXY motif is required for T cell activation. Our results reveal a novel SAG/MHCII/TCR architecture in which vSAGs coerce a near-canonical docking between MHCII and TCR that allows eschewing of traditional CDR3 binding with the associated peptide in favor of MHCII α-chain binding. Our findings highlight the plasticity of the TCR CDRs.
Insights
Mouse mammary tumor virus superantigens (vSAGs) crosslink MHC class II (MHCII) molecules, revealing a novel T cell receptor (TCR) architecture. This structure bypasses peptide binding, instead utilizing vSAG binding to the MHCII α-chain for T cell activation.
Area of Science:
- Immunology
- Structural Biology
- Virology
Background:
- Mouse mammary tumor virus superantigens (vSAGs) are known for structural complexities and their role in T cell activation.
- The precise mechanism by which vSAGs bridge the T cell receptor (TCR) to MHC class II (MHCII) molecules remains unclear.
Purpose of the Study:
- To elucidate the topology of the T cell signaling complex involving vSAG7, MHCII, and TCR.
- To understand the binding interactions and structural requirements for vSAG-mediated T cell activation.
Main Methods:
- Utilized covalently linked peptide/MHCII complexes to assess vSAG presentation.
- Employed an original approach linking vSAG to MHCII chains to determine binding sites.
- Investigated T cell hybridomas to identify key residues involved in TCR recognition.
- Analyzed the role of the conserved tyrosine residue in the vSAG TGXY motif.
Main Results:
- vSAG presentation tolerates peptide variation but is sensitive to N-terminal extensions.
- vSAG binds outside the peptide-binding groove, with C-terminal and N-terminal segments interacting with MHCII α- and β-chains, respectively.
- vSAGs appear to crosslink MHCII molecules.
- Specific MHCII α-chain residues are differentially recognized by TCR CDR3β in a vSAG-engaged complex.
- A conserved tyrosine in the vSAG TGXY motif is essential for T cell activation.
Conclusions:
- A novel vSAG/MHCII/TCR architecture is proposed, where vSAGs induce a canonical MHCII-TCR docking.
- This interaction prioritizes MHCII α-chain binding over traditional peptide binding by TCR CDR3.
- The findings highlight the plasticity of TCR complementarity-determining regions (CDRs).
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