Equilibrium binding of multivalent ligands to cells: effects of cell and receptor density.
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[1] G. Edelman,et al. Specific fractionation of immune cell populations. , 1972, Proceedings of the National Academy of Sciences of the United States of America.
[2] J. Miale. Laboratory medicine: hematology , 1972 .
[3] B. Vogelstein,et al. Molecular determinants of immunogenicity: the immunon model of immune response. , 1976, Proceedings of the National Academy of Sciences of the United States of America.
[4] C DeLisi,et al. The kinetics of aggregation phenomena. I. Minimal models for patch formation of lymphocyte membranes. , 1976, Journal of theoretical biology.
[5] H. Metzger,et al. Dimeric immunoglobulin E serves as a unit signal for mast cell degranulation. , 1977, Proceedings of the National Academy of Sciences of the United States of America.
[6] M. Dembo,et al. Theory of equilibrium binding of asymmetric bivalent haptens to cell surface antibody: application to histamine release from basophils. , 1978, Journal of immunology.
[7] A. Gandolfi,et al. Reversible binding of multivalent antigen in the control of B lymphocyte activation. , 1978, Journal of theoretical biology.
[8] F. Karush. The Affinity of Antibody: Range, Variability, and the Role of Multivalence , 1978 .
[9] A. Perelson. Receptor clustering on a cell surface. I. theory of receptor cross-linking by ligands bearing two chemically identical functional groups , 1980 .
[10] H. Metzger,et al. Larger oligomers of IgE are more effective than dimers in stimulating rat basophilic leukemia cells. , 1980, Journal of immunology.
[11] M. Dembo,et al. Qualitative characteristics of histamine release from human basophils by covalently cross-linked IgE. , 1981, Journal of immunology.
[12] C. DeLisi,et al. Mechanism of binding of multivalent immune complexes to Fc receptors. 1. Equilibrium binding. , 1981, Biochemistry.
[13] Alan S. Perelson,et al. Receptor clustering on a cell surface. III. theory of receptor cross-linking by multivalent ligands: description by ligand states , 1981 .
[14] B. Vogelstein,et al. Specific cellular stimulation in the primary immune response: a quantized model. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[15] M. Dembo,et al. Kinetic analysis of histamine release due to covalently linked IgE dimers. , 1982, Molecular immunology.
[16] C. Janeway,et al. Both a monoclonal antibody and antisera specific for determinants unique to individual cloned helper T cell lines can substitute for antigen and antigen-presenting cells in the activation of T cells , 1983, The Journal of experimental medicine.
[17] H. Dintzis,et al. Studies on the immunogenicity and tolerogenicity of T-independent antigens. , 1983, Journal of immunology.
[18] D. Parker,et al. Fc-dependent inhibition of mouse B cell activation by whole anti-mu antibodies. , 1983, Journal of immunology.
[19] R. Miller,et al. Recombinant immune interferon increases immunoglobulin G Fc receptors on cultured human mononuclear phagocytes. , 1983, The Journal of clinical investigation.
[20] Alan S. Perelson,et al. Some mathematical models of receptor clustering by multivalent ligands , 1984 .
[21] C. Janeway,et al. The Fab fragment of a directly activating monoclonal antibody that precipitates a disulfide-linked heterodimer from a helper T cell clone blocks activation by either allogeneic Ia or antigen and self-Ia , 1984, The Journal of experimental medicine.
[22] D. Parker,et al. Cross-linking of B lymphocyte Fc gamma receptors and membrane immunoglobulin inhibits anti-immunoglobulin-induced blastogenesis. , 1984, Journal of immunology.
[23] F. W. Wiegel,et al. Cell surface dynamics : concepts and models , 1984 .
[24] Alan S. Perelson,et al. Branching Processes Applied to Cell Surface Aggregation Phenomena , 1985 .
[25] J. Cambier,et al. Molecular mechanisms of transmembrane signaling in B lymphocytes. , 1987, Annual review of immunology.
[26] B. Goldstein,et al. Cross-linking of Fc gamma receptors and surface antibodies. Theory and application. , 1990, Journal of immunology.
[27] B. Goldstein,et al. Interpretation of Scatchard plots for aggregating receptor systems. , 1992, Mathematical biosciences.
[28] E. Puré,et al. Tyrosine phosphorylation is required for ligand-induced internalization of the antigen receptor on B lymphocytes. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[29] J. V. D. van de Winkel,et al. Human IgG Fc receptor heterogeneity: molecular aspects and clinical implications. , 1993, Immunology today.
[30] B. Goldstein,et al. Dynamics of signal transduction after aggregation of cell-surface receptors: studies on the type I receptor for IgE. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[31] R C Brower,et al. Minimal requirements for peptide mediated activation of CD8+ CTL. , 1994, Molecular immunology.
[32] B. Goldstein,et al. The kinetics of bivalent ligand-bivalent receptor aggregation: ring formation and the breakdown of the equivalent site approximation. , 1995, Mathematical biosciences.
[33] H. Eisen,et al. Variations in the number of peptide-MHC class I complexes required to activate cytotoxic T cell responses. , 1995, Journal of immunology.