Cytoskeletal Rearrangement in CD4+ T Cells Age-Dependent Defects in TCR-Triggered
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[1] J. Brugge,et al. Integrins and signal transduction pathways: the road taken. , 1995, Science.
[2] H. Turner,et al. A Comparison of the Interaction of Shc and the Tyrosine Kinase ZAP-70 with the T Cell Antigen Receptor ζ Chain Tyrosine-based Activation Motif (*) , 1995, The Journal of Biological Chemistry.
[3] A. Kupfer,et al. TCR signaling induces selective exclusion of CD43 from the T cell-antigen-presenting cell contact site. , 1998, Journal of immunology.
[4] R. Aebersold,et al. ZAP-70 binding specificity to T cell receptor tyrosine-based activation motifs: the tandem SH2 domains of ZAP-70 bind distinct tyrosine-based activation motifs with varying affinity , 1995, The Journal of experimental medicine.
[5] R. Miller,et al. Increased Zap-70 association with CD3zeta in CD4 T cells from old mice. , 1998, Cellular immunology.
[6] A. Tamir,et al. Altered Composition of the Immunological Synapse in an Anergic, Age-Dependent Memory T Cell Subset1 , 2000, The Journal of Immunology.
[7] G. Koretzky,et al. Implication of the GRB2-associated phosphoprotein SLP-76 in T cell receptor-mediated interleukin 2 production , 1996, The Journal of experimental medicine.
[8] F. Sánchez‐Madrid,et al. Cytoskeletal rearrangement during migration and activation of T lymphocytes. , 1999, Trends in cell biology.
[9] M. Davis,et al. Use of global amino acid replacements to define the requirements for MHC binding and T cell recognition of moth cytochrome c (93-103). , 1994, Journal of immunology.
[10] M. Davis,et al. 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. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[11] M. Davis,et al. Altered T cell receptor ligands trigger a subset of early T cell signals. , 1996, Immunity.
[12] A. Weiss,et al. ZAP-70 is constitutively associated with tyrosine-phosphorylated TCR zeta in murine thymocytes and lymph node T cells. , 1994, Immunity.
[13] Colin R. F. Monks,et al. Three-dimensional segregation of supramolecular activation clusters in T cells , 1998, Nature.
[14] R. Miller,et al. Differential tyrosine phosphorylation of zeta chain dimers in mouse CD4 T lymphocytes: effect of age. , 1997, Cellular immunology.
[15] Michael L. Dustin,et al. The immunological synapse and the actin cytoskeleton: molecular hardware for T cell signaling , 2000, Nature Immunology.
[16] L. Samelson,et al. Dynamic actin polymerization drives T cell receptor-induced spreading: a role for the signal transduction adaptor LAT. , 2001, Immunity.
[17] F. Virzi,et al. Investigations of avidin and biotin for imaging applications. , 1987, Journal of nuclear medicine : official publication, Society of Nuclear Medicine.
[18] Michal Baniyash,et al. Normal T Cells Express Two T Cell Antigen Receptor Populations, One of Which Is Linked to the Cytoskeleton via ζ Chain and Displays a Unique Activation-dependent Phosphorylation Pattern* , 1996, The Journal of Biological Chemistry.
[19] J. Chant,et al. Regulation of the polarization of T cells toward antigen-presenting cells by Ras-related GTPase CDC42. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[20] J M Miller,et al. Adhesion-activating phorbol ester increases the mobility of leukocyte integrin LFA-1 in cultured lymphocytes. , 1996, The Journal of clinical investigation.
[21] Takashi Saito,et al. Dependence of T Cell Antigen Recognition on the Dimensions of an Accessory Receptor–Ligand Complex , 1999, The Journal of experimental medicine.
[22] N. Osman,et al. The role of tyrosine phosphorylation in the interaction of cellular tyrosine kinases with the T cell receptor ζ chain tyrosine‐based activation motif , 1995, European journal of immunology.
[23] G K Lewis,et al. Actin polymerization and pseudopod reorganization accompany anti-CD3-induced growth arrest in Jurkat T cells. , 1993, Journal of immunology.
[24] R. Miller,et al. Effect of aging on T lymphocyte activation. , 2000, Vaccine.
[25] Gonzalo G. Garcia,et al. Single-Cell Analyses Reveal Two Defects in Peptide-Specific Activation of Naive T Cells from Aged Mice1 , 2001, The Journal of Immunology.
[26] Michael Loran Dustin,et al. Cytoskeletal polarization and redistribution of cell-surface molecules during T cell antigen recognition. , 2000, Seminars in immunology.
[27] P. W. Janes,et al. The role of lipid rafts in T cell antigen receptor (TCR) signalling. , 2000, Seminars in immunology.
[28] D. Smith,et al. Single-step purification of polypeptides expressed in Escherichia coli as fusions with glutathione S-transferase. , 1988, Gene.
[29] R. Miller,et al. Cluster formation by protein kinase Ctheta during murine T cell activation: effect of age. , 1999, Cellular immunology.
[30] Rangarajan Sampath,et al. Cytoskeletal Interactions with the Leukocyte Integrin β2 Cytoplasmic Tail , 1998, The Journal of Biological Chemistry.
[31] N. Manjunath,et al. Negative regulation of T-cell adhesion and activation by CD43 , 1995, Nature.
[32] Q. Sun,et al. In vivo association of Grb2 with pp116, a substrate of the T cell antigen receptor-activated protein tyrosine kinase. , 1994, The Journal of biological chemistry.
[33] Gonzalo G. Garcia,et al. Age-Dependent Alterations in the Assembly of Signal Transduction Complexes at the Site of T Cell/APC Interaction1 , 2000, The Journal of Immunology.