Signaling Takes Shape in the Immune System
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[1] K A Arndt,et al. Cutting edge , 2012, Archives of dermatology.
[2] Thomas D. Pollard,et al. Activation by Cdc42 and Pip2 of Wiskott-Aldrich Syndrome Protein (Wasp) Stimulates Actin Nucleation by Arp2/3 Complex , 2000, The Journal of cell biology.
[3] E. Bröcker,et al. Antigen presentation in extracellular matrix: interactions of T cells with dendritic cells are dynamic, short lived, and sequential. , 2000, Immunity.
[4] S. Bromley,et al. A supramolecular basis for CD45 tyrosine phosphatase regulation in sustained T cell activation. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[5] M. Davis,et al. Differential clustering of CD4 and CD3zeta during T cell recognition. , 2000, Science.
[6] P. Roche,et al. Concentration of MHC class II molecules in lipid rafts facilitates antigen presentation , 2000, Nature Immunology.
[7] L. Samelson,et al. Association of Grb2, Gads, and phospholipase C-gamma 1 with phosphorylated LAT tyrosine residues. Effect of LAT tyrosine mutations on T cell angigen receptor-mediated signaling. , 2000, The Journal of biological chemistry.
[8] Barbara Hausmann,et al. A motif in the αβ T-cell receptor controls positive selection by modulating ERK activity , 2000, Nature.
[9] D. Cantrell,et al. The Gtpase Rho Controls a P53-Dependent Survival Checkpoint during Thymopoiesis , 2000, The Journal of experimental medicine.
[10] S. Bromley,et al. Cutting Edge: Hierarchy of Chemokine Receptor and TCR Signals Regulating T Cell Migration and Proliferation1 , 2000, The Journal of Immunology.
[11] Michael L. Dustin,et al. The immunological synapse and the actin cytoskeleton: molecular hardware for T cell signaling , 2000, Nature Immunology.
[12] M. Aepfelbacher,et al. The Polarization Defect of Wiskott-Aldrich Syndrome Macrophages Is Linked to Dislocalization of the Arp2/3 Complex1 , 2000, The Journal of Immunology.
[13] D. Williams,et al. Role of the guanosine triphosphatase Rac2 in T helper 1 cell differentiation. , 2000, Science.
[14] Deborah A. Brown,et al. Structure and Function of Sphingolipid- and Cholesterol-rich Membrane Rafts* , 2000, The Journal of Biological Chemistry.
[15] L. Machesky. Putting on the Brakes A Negative Regulatory Function for Ena/VASP Proteins in Cell Migration , 2000, Cell.
[16] Karel Drbal,et al. Phosphoprotein Associated with Glycosphingolipid-Enriched Microdomains (Pag), a Novel Ubiquitously Expressed Transmembrane Adaptor Protein, Binds the Protein Tyrosine Kinase Csk and Is Involved in Regulation of T Cell Activation , 2000, The Journal of experimental medicine.
[17] Toshifumi Takao,et al. Transmembrane phosphoprotein Cbp regulates the activities of Src-family tyrosine kinases , 2000, Nature.
[18] R. Steinman,et al. Transport of peptide-MHC class II complexes in developing dendritic cells. , 2000, Science.
[19] J. Wehland,et al. Fyn-Binding Protein (Fyb)/Slp-76–Associated Protein (Slap), Ena/Vasodilator-Stimulated Phosphoprotein (Vasp) Proteins and the Arp2/3 Complex Link T Cell Receptor (Tcr) Signaling to the Actin Cytoskeleton , 2000, The Journal of cell biology.
[20] D. Olive,et al. Tec kinases: a family with multiple roles in immunity. , 2000, Immunity.
[21] E. Schaeffer,et al. PKC-θ is required for TCR-induced NF-κB activation in mature but not immature T lymphocytes , 2000, Nature.
[22] M. Roth,et al. Phosphatidylinositol 4,5-bisphosphate induces actin-based movement of raft-enriched vesicles through WASP-Arp2/3 , 2000, Current Biology.
[23] R. Zaru,et al. Exclusion of CD45 from the T-cell receptor signaling area in antigen-stimulated T lymphocytes , 2000, Current Biology.
[24] J W Sedat,et al. Polarization of chemoattractant receptor signaling during neutrophil chemotaxis. , 2000, Science.
[25] P. Más,et al. A novel functional interaction between Vav and PKCtheta is required for TCR-induced T cell activation. , 2000, Immunity.
[26] Y. Yashiro‐Ohtani,et al. Non-CD28 Costimulatory Molecules Present in T Cell Rafts Induce T Cell Costimulation by Enhancing the Association of TCR with Rafts1 , 2000, The Journal of Immunology.
[27] Michael Loran Dustin,et al. Cytoskeletal polarization and redistribution of cell-surface molecules during T cell antigen recognition. , 2000, Seminars in immunology.
[28] M. Yaffe,et al. Biochemical Interactions Integrating Itk with the T Cell Receptor-initiated Signaling Cascade* , 2000, The Journal of Biological Chemistry.
[29] Elaine Fuchs,et al. Directed Actin Polymerization Is the Driving Force for Epithelial Cell–Cell Adhesion , 2000, Cell.
[30] Deborah A. Brown,et al. Lipid-dependent Targeting of G Proteins into Rafts* , 2000, The Journal of Biological Chemistry.
[31] Alan Aderem,et al. Dynamic Interactions of Macrophages with T Cells during Antigen Presentation , 1999, The Journal of experimental medicine.
[32] Giulio Superti-Furga,et al. Actin-based motility of vaccinia virus mimics receptor tyrosine kinase signalling , 1999, Nature.
[33] P. W. Janes,et al. Aggregation of Lipid Rafts Accompanies Signaling via the T Cell Antigen Receptor , 1999, The Journal of cell biology.
[34] F. Sallusto,et al. Two subsets of memory T lymphocytes with distinct homing potentials and effector functions , 1999, Nature.
[35] E. Wolf,et al. CCR7 Coordinates the Primary Immune Response by Establishing Functional Microenvironments in Secondary Lymphoid Organs , 1999, Cell.
[36] Z Reich,et al. Thermodynamics of T cell receptor binding to peptide-MHC: evidence for a general mechanism of molecular scanning. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[37] M. Cahalan,et al. Mapping the sensitivity of T cells with an optical trap: polarity and minimal number of receptors for Ca(2+) signaling. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[38] S. Bromley,et al. The immunological synapse: a molecular machine controlling T cell activation. , 1999, Science.
[39] 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.
[40] Gerhard Wagner,et al. Structure of a Heterophilic Adhesion Complex between the Human CD2 and CD58 (LFA-3) Counterreceptors , 1999, Cell.
[41] Timothy J. Mitchison,et al. Spatial control of actin polymerization during neutrophil chemotaxis , 1999, Nature Cell Biology.
[42] B. Baird,et al. Critical Role for Cholesterol in Lyn-mediated Tyrosine Phosphorylation of FcεRI and Their Association with Detergent-resistant Membranes , 1999, The Journal of cell biology.
[43] M. Kirschner,et al. The Interaction between N-WASP and the Arp2/3 Complex Links Cdc42-Dependent Signals to Actin Assembly , 1999, Cell.
[44] D. Nelson,et al. Mutations that cause the Wiskott-Aldrich syndrome impair the interaction of Wiskott-Aldrich syndrome protein (WASP) with WASP interacting protein. , 1999, Journal of immunology.
[45] M. Turner,et al. The Rho-family GTP exchange factor Vav is a critical transducer of T cell receptor signals to the calcium, ERK, and NF-kappaB pathways. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[46] J. Ashwell,et al. Cutting edge: the CD45 tyrosine phosphatase is an inhibitor of Lck activity in thymocytes. , 1999, Journal of immunology.
[47] A. Lanzavecchia,et al. T lymphocyte costimulation mediated by reorganization of membrane microdomains. , 1999, Science.
[48] G. Koretzky,et al. The hematopoietic-specific adaptor protein Gads functions in T-cell signaling via interactions with the SLP-76 and LAT adaptors , 1999, Current Biology.
[49] M. Davis,et al. A receptor/cytoskeletal movement triggered by costimulation during T cell activation. , 1998, Science.
[50] C. McGlade,et al. Gads is a novel SH2 and SH3 domain-containing adaptor protein that binds to tyrosine-phosphorylated Shc , 1998, Oncogene.
[51] A. Kupfer,et al. TCR signaling induces selective exclusion of CD43 from the T cell-antigen-presenting cell contact site. , 1998, Journal of immunology.
[52] B. Mayer,et al. Regulation of PAK activation and the T cell cytoskeleton by the linker protein SLP-76. , 1998, Immunity.
[53] T. Roach,et al. The protein tyrosine phosphatase SHP-1 regulates integrin-mediated adhesion of macrophages , 1998, Current Biology.
[54] Patricia L. Widder,et al. A Novel Adaptor Protein Orchestrates Receptor Patterning and Cytoskeletal Polarity in T-Cell Contacts , 1998, Cell.
[55] Colin R. F. Monks,et al. Three-dimensional segregation of supramolecular activation clusters in T cells , 1998, Nature.
[56] L. Samelson,et al. LAT palmitoylation: its essential role in membrane microdomain targeting and tyrosine phosphorylation during T cell activation. , 1998, Immunity.
[57] Philip R. Cohen,et al. Wiskott-Aldrich syndrome protein-deficient mice reveal a role for WASP in T but not B cell activation. , 1998, Immunity.
[58] L. Tuosto,et al. CD28 affects the earliest signaling events generated by TCR engagement , 1998, European journal of immunology.
[59] G. Koretzky,et al. Adaptor proteins in lymphocyte antigen-receptor signaling. , 1998, Current opinion in immunology.
[60] 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.
[61] F. Alt,et al. Defects in actin-cap formation in Vav-deficient mice implicate an actin requirement for lymphocyte signal transduction , 1998, Current Biology.
[62] K. Tedford,et al. Vav is a regulator of cytoskeletal reorganization mediated by the T-cell receptor , 1998, Current Biology.
[63] A. Weiss,et al. Cytoskeletal Polarization of T Cells Is Regulated by an Immunoreceptor Tyrosine-based Activation Motif–dependent Mechanism , 1998, The Journal of cell biology.
[64] J. Noel,et al. Dimerization-induced inhibition of receptor protein tyrosine phosphatase function through an inhibitory wedge. , 1998, Science.
[65] Michael Loran Dustin,et al. Low Affinity Interaction of Human or Rat T Cell Adhesion Molecule CD2 with Its Ligand Aligns Adhering Membranes to Achieve High Physiological Affinity* , 1997, The Journal of Biological Chemistry.
[66] A. Cheng,et al. Protein tyrosine kinases in thymocyte development. , 1997, Current opinion in immunology.
[67] Z. Li,et al. Cloning of a novel T-cell protein FYB that binds FYN and SH2-domain-containing leukocyte protein 76 and modulates interleukin 2 production. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[68] A. Khoruts,et al. In Vivo Detection of Dendritic Cell Antigen Presentation to CD4+ T Cells , 1997, The Journal of experimental medicine.
[69] Mark M. Davis,et al. Ligand-specific oligomerization of T-cell receptor molecules , 1997, Nature.
[70] C. Der,et al. Lck regulates Vav activation of members of the Rho family of GTPases , 1997, Molecular and cellular biology.
[71] C. Figdor,et al. Dual role of the actin cytoskeleton in regulating cell adhesion mediated by the integrin lymphocyte function-associated molecule-1. , 1997, Molecular biology of the cell.
[72] K. Schuebel,et al. Phosphotyrosine-dependent activation of Rac-1 GDP/GTP exchange by the vav proto-oncogene product , 1997, Nature.
[73] W. Rodgers,et al. Exclusion of CD45 inhibits activity of p56lck associated with glycolipid-enriched membrane domains , 1996, The Journal of cell biology.
[74] Robyn L. Stanfield,et al. An αβ T Cell Receptor Structure at 2.5 Å and Its Orientation in the TCR-MHC Complex , 1996, Science.
[75] Daniel Choquet,et al. Ligand binding regulates the directed movement of β1 integrins on fibroblasts , 1996, Nature.
[76] J. Szöllősi,et al. Supramolecular complexes of MHC class I, MHC class II, CD20, and tetraspan molecules (CD53, CD81, and CD82) at the surface of a B cell line JY. , 1996, Journal of immunology.
[77] 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.
[78] L. Lim,et al. A Drosophila homolog of the Rac- and Cdc42-activated serine/threonine kinase PAK is a potential focal adhesion and focal complex protein that colocalizes with dynamic actin structures , 1996, Molecular and cellular biology.
[79] A. Elson,et al. Protein-tyrosine Phosphatase ϵ , 1995, The Journal of Biological Chemistry.
[80] J. Cloutier,et al. Requirement of the SH3 and SH2 domains for the inhibitory function of tyrosine protein kinase p50csk in T lymphocytes , 1995, Molecular and cellular biology.
[81] 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.
[82] A. Lanzavecchia,et al. Serial triggering of many T-cell receptors by a few peptideMHC complexes , 1995, Nature.
[83] M. Davis,et al. Kinetics of T-cell receptor binding to peptide/I-Ek complexes: correlation of the dissociation rate with T-cell responsiveness. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[84] W. Paul,et al. Lymphocyte responses and cytokines , 1994, Cell.
[85] D A Lauffenburger,et al. Integrin-cytoskeletal interactions in migrating fibroblasts are dynamic, asymmetric, and regulated , 1993, The Journal of cell biology.
[86] J Ureña,et al. SH2 domains exhibit high-affinity binding to tyrosine-phosphorylated peptides yet also exhibit rapid dissociation and exchange , 1993, Molecular and cellular biology.
[87] R. Klausner,et al. Activation of T cells by a tyrosine kinase activation domain in the cytoplasmic tail of CD3 epsilon. , 1992, Science.
[88] T. Mosmann,et al. Polarized expression of cytokines in cell conjugates of helper T cells and splenic B cells. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[89] Timothy A. Springer,et al. Adhesion receptors of the immune system , 1990, Nature.
[90] A. Kleinfeld,et al. Short term exposure to cis unsaturated free fatty acids inhibits degranulation of cytotoxic T lymphocytes. , 1990, Journal of immunology.
[91] Michael L. Dustin,et al. T-cell receptor cross-linking transiently stimulates adhesiveness through LFA-1 , 1989, Nature.
[92] R. Klausner,et al. LIPID DOMAINS IN MEMBRANES * , 1982, Annals of the New York Academy of Sciences.
[93] R. Klausner,et al. Lipid domains in membranes. Evidence derived from structural perturbations induced by free fatty acids and lifetime heterogeneity analysis. , 1980, The Journal of biological chemistry.
[94] E. Unanue,et al. Two distinct mechanisms for redistribution of lymphocyte surface macromolecules. I. Relationship to cytoplasmic myosin , 1978, The Journal of cell biology.
[95] E. Unanue,et al. LIGAND-INDUCED MOVEMENT OF LYMPHOCYTE MEMBRANE MACROMOLECULES , 1973, The Journal of experimental medicine.
[96] E. Unanue,et al. LIGAND-INDUCED MOVEMENT OF LYMPHOCYTE MEMBRANE MACROMOLECULES , 1972, The Journal of experimental medicine.
[97] S. Bromley,et al. The immunological synapse. , 2001, Annual review of immunology.
[98] L. Frati,et al. RAC1/P38 MAPK signaling pathway controls beta1 integrin-induced interleukin-8 production in human natural killer cells. , 2000, Immunity.
[99] G. Koretzky,et al. Adapter proteins in lymphocyte antigen-receptor signaling. , 2000, Current opinion in immunology.
[100] X. Q. Chen,et al. PAK kinases are directly coupled to the PIX family of nucleotide exchange factors. , 1998, Molecular cell.
[101] A. Lanzavecchia,et al. The duration of antigenic stimulation determines the fate of naive and effector T cells. , 1998, Immunity.
[102] E. Kaldjian,et al. Orchestrated information transfer underlying leukocyte endothelial interactions. , 1996, Annual review of immunology.
[103] Z. Y. Liu,et al. Activation of mechanical responses in leukocytes. , 1990, Biorheology.
[104] Y. Shoenfeld,et al. [The T cell receptor]. , 1985, Harefuah.
[105] M. Norcross,et al. A synaptic basis for T-lymphocyte activation. , 1984, Annales d'immunologie.