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Use of Single Chain MHC Technology to Investigate Co-agonism in Human CD8+ T Cell Activation
Published on: February 28, 2019
Membrane-anchored beta 2-microglobulin stabilizes a highly receptive state of MHC class I molecules
Dikla Berko1, Yaron Carmi, Gal Cafri
1Laboratory of Immunology, MIGAL-Galilee Technology Center, Kiryat Shmona, Israel.
Insights
Genetically modifying beta2-microglobulin (beta2m) to anchor in the cell membrane enhances Major Histocompatibility Complex class I (MHC-I) stability and peptide binding. This approach improves T cell responses and tumor suppression, offering a new vaccine strategy.
Area of Science:
- Immunology
- Molecular Biology
- Vaccinology
Background:
- The effectiveness of CTL-inducing vaccines depends on Major Histocompatibility Complex class I (MHC-I)-peptide complexes on antigen-presenting cell (APC) membranes.
- Beta2-microglobulin (beta2m) is crucial for the stability of MHC-I molecules.
Purpose of the Study:
- To investigate if genetically engineering beta2m into an integral membrane protein enhances MHC-I stability and vaccine efficacy.
- To explore the mechanism of MHC-I stabilization by membranal beta2m.
Main Methods:
- Transfection of mouse RMA-S cells with membranal human beta2m (hbeta2m).
- Assessing MHC-I thermal stability and exogenous peptide binding kinetics using complex-specific antibodies and T cell activation assays.
- Analyzing the effects of soluble beta2m and antibodies against hbeta2m.
- In vivo tumor suppression studies.
Main Results:
- Membranal hbeta2m expression significantly increased MHC-I thermal stability in RMA-S cells.
- Transfectants bound exogenous peptides at much lower concentrations and faster rates compared to parental cells.
- Antibody inhibition and co-immunoprecipitation suggested prolonged persistence and rapid formation of peptide-receptive heterodimers.
- In vivo, modified cells demonstrated superior tumor growth suppression.
Conclusions:
- Membranal beta2m stabilizes MHC-I molecules, potentially through an allosteric mechanism involving heterodimer persistence and formation.
- This strategy offers a novel scaffold for developing more effective CTL-inducing vaccines.
Abstract:
The magnitude of response elicited by CTL-inducing vaccines correlates with the density of MHC class I (MHC-I)-peptide complexes formed on the APC membrane. The MHC-I L chain, beta2-microglobulin (beta2m), governs complex stability. We reasoned that genetically converting beta2m into an integral membrane protein should exert a marked stabilizing effect on the resulting MHC-I molecules and enhance vaccine efficacy. In the present study, we show that expression of membranal human beta2m (hbeta2m) in mouse RMA-S cells elevates MHC-I thermal stability. RMA-S transfectants bind an exogenous peptide at concentrations 10(4)- to 10(6)-fold lower than parental RMA-S, as detected by complex-specific Abs and by T cell activation. Moreover, saturation of the transfectants' MHC-I by exogenous peptide occurs within 1 min, as compared with approximately 1 h required for parental cells. At saturation, however, level of peptide bound by modified cells is only 3- to 5-fold higher. Expression of native hbeta2m only results in marginal effect on the binding profile. Soluble beta2m has no effect on the accelerated kinetics, but the kinetics of transfectants parallel that of parental cells in the presence of Abs to hbeta2m. Ab inhibition and coimmunoprecipitation analyses suggest that both prolonged persistence of peptide-receptive H chain/beta2m heterodimers and fast heterodimer formation via lateral diffusion may contribute to stabilization. In vivo, peptide-loaded transfectants are considerably superior to parental cells in suppressing tumor growth. Our findings support the role of an allosteric mechanism in determining ternary MHC-I complex stability and propose membranal beta2m as a novel scaffold for CTL induction.
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