Direct observation of ligand recognition by T cells (original) (raw)

References

  1. Monks, C. R. F., Freiberg, B. A., Kupfer, H., Sciaky, N. & Kupfer, A. Three-dimensional segregation of supramolecular activation clusters in T cells. Nature 395, 82–86 (1998)
    Article ADS CAS Google Scholar
  2. Grakoui, A. et al. The immunogical synapse: a molecular machine controlling T cell activation. Science 285, 221–227 (1999)
    Article CAS Google Scholar
  3. Krummel, M. F., Sjaastad, M. D., Wulfing, C. & Davis, M. M. Differential clustering of CD4 and CD3ζ during T cell recognition. Science 289, 1349–1352 (2000)
    Article ADS CAS Google Scholar
  4. Harding, C. V. & Unanue, E. R. Quantitation of antigen-presenting cell MHC class II/peptide complexes necessary for T-cell stimulation. Nature 346, 574–576 (1990)
    Article ADS CAS Google Scholar
  5. Demotz, S., Grey, H. M. & Sette, A. The minimal number of class-I MHC antigen complexes needed for T-cell activation. Science 249, 1028–1030 (1990)
    Article ADS CAS Google Scholar
  6. Kimachi, K., Croft, M. & Grey, H. M. The minimal number of antigen-major histocompatibility complex class II complexes required for activation of naive and primed T cells. Eur. J. Immunol. 27, 3310–3317 (1997)
    Article CAS Google Scholar
  7. Reay, P. A. et al. Determination of the relationship between T cell responsiveness and the number of MHC-peptide complexes using specific monoclonal antibodies. J. Immunol. 164, 5626–5634 (2000)
    Article CAS Google Scholar
  8. Christinck, E. R., Luscher, M. A., Barber, B. H. & Williams, D. B. Peptide binding to class I MHC on living cells and quantitation of complexes required for CTL lysis. Nature 352, 67–70 (1991)
    Article ADS CAS Google Scholar
  9. Brower, R. C. et al. Minimal requirements for peptide mediated activation of CD8+ CTL. Mol. Immunol. 31, 1285–1293 (1994)
    Article CAS Google Scholar
  10. Sykulev, Y., Joo, M., Vturina, I., Tsomides, T. J. & Eisen, H. N. Evidence that a single peptide–MHC complex on a target cell can elicit a cytolytic T cell response. Immunity 4, 565–571 (1996)
    Article CAS Google Scholar
  11. Triantafilou, K., Triantafilou, M. & Wilson, K. M. Phycobiliprotein-Fab conjugates as probes for single particle fluorescence imaging. Cytometry 41, 226–234 (2000)
    Article CAS Google Scholar
  12. Sako, Y., Minoghchi, S. & Yanagida, T. Single-molecule imaging of EGFR signalling on the surface of living cells. Nature Cell Biol. 2, 168–172 (2000)
    Article CAS Google Scholar
  13. Tsien, R. Y. Fluorescent probes of cell signaling. Annu. Rev. Neurosci. 12, 227–253 (1989)
    Article CAS Google Scholar
  14. Negulescu, P. A., Krasieva, T. B., Khan, A., Kerschbaum, H. H. & Cahalan, M. D. Polarity of T cell shape, motility, and sensitivity to antigen. Immunity 4, 421–430 (1996)
    Article CAS Google Scholar
  15. Wülfing, C. et al. Costimulation and endogenous MHC ligands contribute to T cell recognition. Nature Immunol. 3, 42–47 (2002)
    Article Google Scholar
  16. Marrack, P. et al. The major histocompatibility complex-restricted antigen receptor on T cells. II. Role of the L3T4 product. J. Exp. Med. 158, 1077–1091 (1983)
    Article CAS Google Scholar
  17. Hampl, J., Chien, Y. H. & Davis, M. M. CD4 augments the response of a T cell to agonist but not to antagonist ligands. Immunity 7, 379–385 (1997)
    Article CAS Google Scholar
  18. Vidal, K., Daniel, C., Hill, M., Littman, D. R. & Allen, P. M. Differential requirements for CD4 in TCR–ligand interactions. J. Immunol. 163, 4811–4818 (1999)
    CAS PubMed Google Scholar
  19. Baylor, D. A., Lamb, T. D. & Yau, K. W. Responses of retinal rods to single photons. J. Physiol. (Lond.) 288, 613–634 (1979)
    CAS Google Scholar
  20. Boniface, J. J. et al. Initiation of signal transduction through the T cell receptor requires the peptide multivalent engagement of MHC ligands. Immunity 9, 459–466 (1998)
    Article CAS Google Scholar
  21. Cochran, J. R., Cameron, T. O. & Stern, L. J. The relationship of MHC–peptide binding and T cell activation probed using chemically defined MHC class II oligomers. Immunity 12, 241–250 (2000)
    Article CAS Google Scholar
  22. Heldin, C. H. Dimerization of cell surface receptors in signal transduction. Cell 80, 213–223 (1995)
    Article CAS Google Scholar
  23. Wang, J. H. et al. Crystal structure of the human CD4 N-terminal two-domain fragment complexed to a class II MHC molecule. Proc. Natl Acad. Sci. USA 98, 10799–10804 (2001)
    Article ADS CAS Google Scholar
  24. Anderson, P., Blue, M. L. & Schlossman, S. F. Comodulation of CD3 and CD4. Evidence for a specific association between CD4 and approximately 5% of the CD3:T cell receptor complexes on helper T lymphocytes. J. Immunol. 140, 1732–1737 (1988)
    CAS PubMed Google Scholar
  25. Beyers, A. D., Spruyt, L. L. & Williams, A. F. Molecular associations between the T-lymphocyte antigen receptor complex and the surface antigens CD2, CD4, or CD8 and CD5. Proc. Natl Acad. Sci. USA 89, 2945–2949 (1992)
    Article ADS CAS Google Scholar
  26. Xiong, Y., Kern, P., Chang, H.-C. & Reinherz, E. L. T cell receptor binding to a pMHCII ligand is kinetically distinct from and independent of CD4. J. Biol. Chem. 276, 5659–5667 (2001)
    Article CAS Google Scholar
  27. Crawford, F., Kozono, H., White, J., Marrack, P. & Kappler, J. Detection of antigen-specific T cells with multivalent soluble class II MHC covalent peptide complexes. Immunity 8, 675–682 (1998)
    Article CAS Google Scholar
  28. Wülfing, C., Sjaastad, M. D. & Davis, M. M. Visualizing the dynamics of T cell activation: Intracellular adhesion molecule 1 migrates rapidly to the T cell/B cell interface and acts to sustain calcium levels. Proc. Natl Acad. Sci. USA 95, 6302–6307 (1998)
    Article ADS Google Scholar
  29. Pear, W. S., Nolan, G. P., Scott, M. L. & Baltimore, D. Production of high-titer helper-free retroviruses by transient transfection. Proc. Natl Acad. Sci. USA 90, 8392–8396 (1993)
    Article ADS CAS Google Scholar
  30. Wülfing, C. & Davis, M. M. A receptor/cytoskeletal movement triggered by costimulation during T cell activation. Science 282, 2266–2269 (1998)
    Article ADS Google Scholar

Download references