Functions of the FAK family kinases in T cells: beyond actin cytoskeletal rearrangement
暂无分享,去创建一个
[1] Lance C Kam,et al. CD28 and CD3 have complementary roles in T-cell traction forces , 2014, Proceedings of the National Academy of Sciences.
[2] Nicole M. Chapman,et al. Focal Adhesion Kinase Negatively Regulates Lck Function Downstream of the T Cell Antigen Receptor , 2013, The Journal of Immunology.
[3] F. Macian,et al. Induction and stability of the anergic phenotype in T cells. , 2013, Seminars in immunology.
[4] A. Huttenlocher,et al. The focal adhesion kinase inhibitor PF-562,271 impairs primary CD4+ T cell activation. , 2013, Biochemical pharmacology.
[5] V. Golubovskaya,et al. Disrupting the Scaffold to Improve Focal Adhesion Kinase–Targeted Cancer Therapeutics , 2013, Science Signaling.
[6] R. Zamoyska,et al. T cell receptor signalling networks: branched, diversified and bounded , 2013, Nature Reviews Immunology.
[7] Nicole M. Chapman,et al. Non-Catalytic Functions of Pyk2 and Fyn Regulate Late Stage Adhesion in Human T Cells , 2012, PloS one.
[8] Morgan Huse,et al. Microtubule-organizing center polarity and the immunological synapse: protein kinase C and beyond , 2012, Front. Immun..
[9] Alexander Babich,et al. F-actin polymerization and retrograde flow drive sustained PLCγ1 signaling during T cell activation , 2012, The Journal of cell biology.
[10] Michael Loran Dustin,et al. Integrin inside-out signaling and the immunological synapse. , 2012, Current opinion in cell biology.
[11] Sudha Kumari,et al. Mechanosensing in T lymphocyte activation. , 2012, Biophysical journal.
[12] I. Taniuchi,et al. Transcriptional control of T-cell development. , 2011, International immunology.
[13] Chao Zhang,et al. Feedback Circuits Monitor and Adjust Basal Lck-Dependent Events in T Cell Receptor Signaling , 2011, Science Signaling.
[14] Michael L. Dustin,et al. New insights into the T cell synapse from single molecule techniques , 2011, Nature Reviews Immunology.
[15] N. Wong,et al. CD44-mediated elongated T cell spreading requires Pyk2 activation by Src family kinases, extracellular calcium, phospholipase C and phosphatidylinositol-3 kinase. , 2011, Cellular signalling.
[16] H. Ostergaard,et al. Hypophosphorylated and inactive Pyk2 associates with paxillin at the microtubule organizing center in hematopoietic cells. , 2011, Cellular signalling.
[17] A. Villunger,et al. Shaping the T‐cell repertoire: a matter of life and death , 2011, Immunology and cell biology.
[18] B. Baaten,et al. Multifaceted regulation of T cells by CD44 , 2010, Communicative & integrative biology.
[19] M. Eck,et al. The FERM domain: organizing the structure and function of FAK , 2010, Nature Reviews Molecular Cell Biology.
[20] Matthew F Krummel,et al. Mediation of T-cell activation by actin meshworks. , 2010, Cold Spring Harbor perspectives in biology.
[21] J. Schlessinger,et al. Proline-rich tyrosine kinase-2 is critical for CD8 T-cell short-lived effector fate , 2010, Proceedings of the National Academy of Sciences.
[22] Inmoo Rhee,et al. The phosphatase PTP-PEST promotes secondary T cell responses by dephosphorylating the protein tyrosine kinase Pyk2. , 2010, Immunity.
[23] H. Ostergaard,et al. Regulation of the Tyrosine Kinase Pyk2 by Calcium Is through Production of Reactive Oxygen Species in Cytotoxic T Lymphocytes* , 2010, The Journal of Biological Chemistry.
[24] Omer Dushek,et al. Constitutively Active Lck Kinase in T Cells Drives Antigen Receptor Signal Transduction , 2010, Immunity.
[25] J. Houtman,et al. T cell receptor activation leads to two distinct phases of Pyk2 activation and actin cytoskeletal rearrangement in human T cells. , 2010, Molecular immunology.
[26] Michael D Schaller,et al. Cellular functions of FAK kinases: insight into molecular mechanisms and novel functions , 2010, Journal of Cell Science.
[27] Nicole M. Chapman,et al. The T cell receptor‐mediated phosphorylation of Pyk2 tyrosines 402 and 580 occurs via a distinct mechanism than other receptor systems , 2010, Journal of leukocyte biology.
[28] Ricky Cheung,et al. An arrestin‐dependent multi‐kinase signaling complex mediates MIP‐1β/CCL4 signaling and chemotaxis of primary human macrophages , 2009, Journal of leukocyte biology.
[29] G. Koretzky,et al. T cell activation. , 2009, Annual review of immunology.
[30] Junsang Doh,et al. A synaptic basis for paracrine interleukin-2 signaling during homotypic T cell interaction. , 2008, Immunity.
[31] J. Guan,et al. Compensatory role for Pyk2 during angiogenesis in adult mice lacking endothelial cell FAK , 2008, The Journal of cell biology.
[32] Jean-François Guichou,et al. Structural basis for the interaction between focal adhesion kinase and CD4. , 2008, Journal of molecular biology.
[33] John T. Chang,et al. Asymmetric T Lymphocyte Division in the Initiation of Adaptive Immune Responses , 2007, Science.
[34] P. Schwartzberg,et al. Tec Kinases Regulate TCR-Mediated Recruitment of Signaling Molecules and Integrin-Dependent Cell Adhesion1 , 2005, The Journal of Immunology.
[35] K. Yamada,et al. Dual function of focal adhesion kinase in regulating integrin‐induced MMP‐2 and MMP‐9 release by human T lymphoid cells , 2005, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[36] T. Mustelin,et al. Knockdown of C‐terminal Src kinase by siRNA‐mediated RNA interference augments T cell receptor signaling in mature T cells , 2004, European journal of immunology.
[37] J. Penninger,et al. Essential role of the E3 ubiquitin ligase Cbl-b in T cell anergy induction. , 2004, Immunity.
[38] E. Giannoni,et al. Lymphocyte Function-associated Antigen-1-mediated T Cell Adhesion Is Impaired by Low Molecular Weight Phosphotyrosine Phosphatase-dependent Inhibition of FAK Activity* , 2003, Journal of Biological Chemistry.
[39] M. Sheetz,et al. Pyk2 regulates multiple signaling events crucial for macrophage morphology and migration , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[40] P. Baumgaertner,et al. The β1 and β3 Integrins Promote T Cell Receptor-mediated Cytotoxic T Lymphocyte Activation* , 2003, Journal of Biological Chemistry.
[41] D. Schlaepfer,et al. Paxillin Binding to the α4 Integrin Subunit Stimulates LFA-1 (Integrin αLβ2)-Dependent T Cell Migration by Augmenting the Activation of Focal Adhesion Kinase/Proline-Rich Tyrosine Kinase-21 , 2003, The Journal of Immunology.
[42] L. Frati,et al. Proline-Rich Tyrosine Kinase 2 and Rac Activation by Chemokine and Integrin Receptors Controls NK Cell Transendothelial Migration1 , 2003, The Journal of Immunology.
[43] Shin-Young Park,et al. Csk homologous kinase associates with RAFTK/Pyk2 in breast cancer cells and negatively regulates its activation and breast cancer cell migration. , 2002, International journal of oncology.
[44] F. Sánchez‐Madrid,et al. TCR Engagement Induces Proline-Rich Tyrosine Kinase-2 (Pyk2) Translocation to the T Cell-APC Interface Independently of Pyk2 Activity and in an Immunoreceptor Tyrosine-Based Activation Motif-Mediated Fashion1 , 2002, The Journal of Immunology.
[45] C. Cabañas,et al. LFA‐1 integrin and the microtubular cytoskeleton are involved in the Ca2+‐mediated regulation of the activity of the tyrosine kinase PYK2 in T cells , 2002, Journal of leukocyte biology.
[46] F. Alt,et al. Vav1 controls integrin clustering and MHC/peptide-specific cell adhesion to antigen-presenting cells. , 2002, Immunity.
[47] C. Cabañas,et al. Rho and Rho-associated Kinase Modulate the Tyrosine Kinase PYK2 in T-cells through Regulation of the Activity of the Integrin LFA-1* , 2001, The Journal of Biological Chemistry.
[48] N. Wong,et al. CD44-initiated Cell Spreading Induces Pyk2 Phosphorylation, Is Mediated by Src Family Kinases, and Is Negatively Regulated by CD45* , 2001, The Journal of Biological Chemistry.
[49] M. Chan,et al. MIP-1alpha induces activation of phosphatidylinositol-3 kinase that associates with Pyk-2 and is necessary for B-cell migration. , 2001, Experimental cell research.
[50] L. Mei,et al. Regulation of Cdc42 Gtpase by Proline-Rich Tyrosine Kinase 2 Interacting with Psgap, a Novel Pleckstrin Homology and Src Homology 3 Domain Containing Rhogap Protein , 2001, The Journal of cell biology.
[51] L. Samelson,et al. Dynamic actin polymerization drives T cell receptor-induced spreading: a role for the signal transduction adaptor LAT. , 2001, Immunity.
[52] E. Reinherz,et al. A critical role for p59fyn in CD2‐based signal transduction , 2000, European journal of immunology.
[53] S. Hattori,et al. Protein-tyrosine Kinase Pyk2 Is Involved in Interleukin-2 Production by Jurkat T Cells via Its Tyrosine 402* , 2000, The Journal of Biological Chemistry.
[54] C. Cabañas,et al. The Tyrosine Kinase Pyk-2/Raftk Regulates Natural Killer (Nk) Cell Cytotoxic Response, and Is Translocated and Activated upon Specific Target Cell Recognition and Killing , 2000, The Journal of cell biology.
[55] K. Kamiguchi,et al. Beta 1-integrin-mediated cell signaling in T lymphocytes. , 2000, Journal of dermatological science.
[56] L. Frati,et al. Cutting Edge: Functional Role for Proline-Rich Tyrosine Kinase 2 in NK Cell-Mediated Natural Cytotoxicity1 , 2000, The Journal of Immunology.
[57] S. Iwata,et al. Role of the β1 integrin molecule in T-cell activation and migration , 2000, Modern rheumatology.
[58] S. Knechtle,et al. T cell activation up-regulates the expression of the focal adhesion kinase Pyk2: opposing roles for the activation of protein kinase C and the increase in intracellular Ca2+. , 1999, Journal of immunology.
[59] N. Hogg,et al. The interaction of activated integrin lymphocyte function-associated antigen 1 with ligand intercellular adhesion molecule 1 induces activation and redistribution of focal adhesion kinase and proline-rich tyrosine kinase 2 in T lymphocytes. , 1999, Molecular biology of the cell.
[60] H. Umehara,et al. β2-Integrin, LFA-1, and TCR/CD3 Synergistically Induce Tyrosine Phosphorylation of Focal Adhesion Kinase (pp125FAK) in PHA-Activated T Cells☆ , 1999 .
[61] S. Knechtle,et al. CD28 Ligation Induces Tyrosine Phosphorylation of Pyk2 but Not Fak in Jurkat T Cells* , 1999, The Journal of Biological Chemistry.
[62] G. V. van Seventer,et al. Pyk2 is differentially regulated by β 1 integrin‐ and CD28‐mediated co‐stimulation in human CD4+ T lymphocytes , 1998, European journal of immunology.
[63] T. Hunter,et al. Pyk2 and Src‐family protein‐tyrosine kinases compensate for the loss of FAK in fibronectin‐stimulated signaling events but Pyk2 does not fully function to enhance FAK− cell migration , 1998, The EMBO journal.
[64] J. Parsons,et al. Expression and characterization of splice variants of PYK2, a focal adhesion kinase-related protein. , 1998, Journal of cell science.
[65] J. Schlessinger,et al. Identification of a New Pyk2 Isoform Implicated in Chemokine and Antigen Receptor Signaling* , 1998, The Journal of Biological Chemistry.
[66] J. Haskill,et al. A Calcium-dependent Tyrosine Kinase Splice Variant in Human Monocytes , 1998, The Journal of Biological Chemistry.
[67] A. Takaoka,et al. Pyk2 is a downstream mediator of the IL-2 receptor-coupled Jak signaling pathway. , 1998, Genes & development.
[68] H. Ostergaard,et al. Paxillin Phosphorylation and Association with Lck and Pyk2 in Anti-CD3- or Anti-CD45-stimulated T Cells* , 1998, The Journal of Biological Chemistry.
[69] H. Avraham,et al. Characterization of the novel focal adhesion kinase RAFTK in hematopoietic cells. , 1997, Leukemia & lymphoma.
[70] H. Ostergaard,et al. T cell receptor engagement induces tyrosine phosphorylation of FAK and Pyk2 and their association with Lck. , 1997, Journal of immunology.
[71] S. Lev,et al. Tyrosine Phosphorylation of Pyk2 Is Selectively Regulated by Fyn During TCR Signaling , 1997, The Journal of experimental medicine.
[72] B. Druker,et al. RAFTK, a Novel Member of the Focal Adhesion Kinase Family, Is Phosphorylated and Associates with Signaling Molecules upon Activation of Mature T Lymphocytes , 1997, The Journal of experimental medicine.
[73] H. Ostergaard,et al. Cytotoxic T lymphocytes express a β3 integrin which can induce the phosphorylation of focal adhesion kinase and the related PYK‐2 , 1997, European journal of immunology.
[74] R. Anderegg,et al. Activation of a Novel Calcium-dependent Protein-tyrosine Kinase , 1996, The Journal of Biological Chemistry.
[75] T. Udagawa,et al. Alpha 4 beta 1 (CD49d/CD29) integrin costimulation of human T cells enhances transcription factor and cytokine induction in the absence of altered sensitivity to anti-CD3 stimulation. , 1996, Journal of immunology.
[76] J. Shine,et al. Molecular cloning and assignment of FAK2, a novel human focal adhesion kinase, to 8p11.2-p22 by nonisotopic in situ hybridization. , 1996, Genomics.
[77] S. Aizawa,et al. p59fyn-p125FAK cooperation in development of CD4+CD8+ thymocytes. , 1996, Blood.
[78] S. Hanks,et al. T cell receptor- and beta 1 integrin-mediated signals synergize to induce tyrosine phosphorylation of focal adhesion kinase (pp125FAK) in human T cells , 1995, The Journal of experimental medicine.
[79] 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.
[80] S. Aizawa,et al. Reduced cell motility and enhanced focal adhesion contact formation in cells from FAK-deficient mice , 1995, Nature.
[81] C. Morimoto,et al. Role of the VLA-4 molecule in T cell costimulation. Identification of the tyrosine phosphorylation pattern induced by the ligation of VLA-4. , 1995, Journal of immunology.
[82] Terukatsu Sasaki,et al. Cloning and Characterization of Cell Adhesion Kinase β, a Novel Protein-tyrosine Kinase of the Focal Adhesion Kinase Subfamily (*) , 1995, The Journal of Biological Chemistry.
[83] C. Morimoto,et al. Focal Adhesion Kinase (pp125FAK) Is Tyrosine Phosphorylated after Engagement of α4β1 and α5β1 Integrins on Human T-Lymphoblastic Cells , 1995 .
[84] K. Alitalo,et al. Overexpressed Csk tyrosine kinase is localized in focal adhesions, causes reorganization of alpha v beta 5 integrin, and interferes with HeLa cell spreading , 1995, Molecular and cellular biology.
[85] H. Ostergaard,et al. Fibronectin induces phosphorylation of a 120‐kDa protein and synergizes with the T cell receptor to activate cytotoxic T cell clones , 1995, European journal of immunology.
[86] H. Hanafusa,et al. Analysis of the binding of the Src homology 2 domain of Csk to tyrosine-phosphorylated proteins in the suppression and mitotic activation of c-Src. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[87] T Pawson,et al. Specific motifs recognized by the SH2 domains of Csk, 3BP2, fps/fes, GRB-2, HCP, SHC, Syk, and Vav , 1994, Molecular and cellular biology.
[88] A. Aruffo,et al. Vascular cell adhesion molecule 1 induces T-cell antigen receptor-dependent activation of CD4+T lymphocytes. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[89] J. Houtman,et al. The adaptor protein LAT serves as an integration node for signaling pathways that drive T cell activation , 2013, Wiley interdisciplinary reviews. Systems biology and medicine.
[90] Kathy W. K. Tse,et al. Small molecule inhibitors of the Pyk2 and FAK kinases modulate chemoattractant-induced migration, adhesion and Akt activation in follicular and marginal zone B cells. , 2012, Cellular immunology.
[91] J. Girault,et al. Pyk2 cytonuclear localization: mechanisms and regulation by serine dephosphorylation , 2012, Cellular and Molecular Life Sciences.
[92] M. Schaller,et al. Focal adhesion kinase: exploring Fak structure to gain insight into function. , 2011, International review of cell and molecular biology.
[93] H. Ostergaard,et al. Focal adhesion kinase-related protein tyrosine kinase Pyk2 in T-cell activation and function , 2005, Immunologic research.
[94] R. Franklin,et al. Regulation of Pyk2 expression by p56(Lck) in Jurkat T lymphocytes. , 2001, Cellular signalling.
[95] Melinda Fitzgerald,et al. Immunol. Cell Biol. , 1995 .