Kinome signaling through regulated protein-protein interactions in normal and cancer cells.
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[1] L. Langeberg,et al. mAKAP assembles a protein kinase A/PDE4 phosphodiesterase cAMP signaling module , 2001, The EMBO journal.
[2] Robert H. Insall,et al. F-BAR domains: multifunctional regulators of membrane curvature , 2008, Journal of Cell Science.
[3] W. Miller,et al. Cooperative activation of Src family kinases by SH3 and SH2 ligands. , 2007, Cancer letters.
[4] G. Pellecchia,et al. Membrane protein degradation by AAA proteases in mitochondria: extraction of substrates from either membrane surface. , 2000, Molecular cell.
[5] Ellen R. Laird,et al. Molecular basis for interaction of the protein tyrosine kinase ZAP-70 with the T-cell receptor , 2007, Nature.
[6] G. Superti-Furga,et al. Structural Coupling of SH2-Kinase Domains Links Fes and Abl Substrate Recognition and Kinase Activation , 2008, Cell.
[7] P. Cole,et al. Protein tyrosine kinases Src and Csk: a tail's tale. , 2003, Current opinion in chemical biology.
[8] Michael J. Eck,et al. Three-dimensional structure of the tyrosine kinase c-Src , 1997, Nature.
[9] John Kuriyan,et al. Structural Basis for the Recognition of c-Src by Its Inactivator Csk , 2008, Cell.
[10] P. Tsichlis,et al. AKT/PKB and other D3 phosphoinositide-regulated kinases: kinase activation by phosphoinositide-dependent phosphorylation. , 1999, Annual review of biochemistry.
[11] John Kuriyan,et al. The origin of protein interactions and allostery in colocalization , 2007, Nature.
[12] Oliver Hantschel,et al. Organization of the SH3-SH2 unit in active and inactive forms of the c-Abl tyrosine kinase. , 2006, Molecular cell.
[13] Arthur Weiss,et al. ZAP-70: A 70 kd protein-tyrosine kinase that associates with the TCR ζ chain , 1992, Cell.
[14] G. Koretzky,et al. SLP76 and SLP65: complex regulation of signalling in lymphocytes and beyond , 2006, Nature Reviews Immunology.
[15] P. Cullen,et al. Membrane targeting by pleckstrin homology domains. , 2004, Current topics in microbiology and immunology.
[16] Giulio Superti-Furga,et al. Dynamic Coupling between the SH2 and SH3 Domains of c-Src and Hck Underlies Their Inactivation by C-Terminal Tyrosine Phosphorylation , 2001, Cell.
[17] Lewis C Cantley,et al. A rapid method for determining protein kinase phosphorylation specificity , 2004, Nature Methods.
[18] A. Shaw,et al. Regulation of antigen receptor signal transduction by protein tyrosine kinases. , 1996, Current opinion in immunology.
[19] P. Bork,et al. Linear Motif Atlas for Phosphorylation-Dependent Signaling , 2008, Science Signaling.
[20] W. Miller,et al. The evolutionarily conserved arrangement of domains in SRC family kinases is important for substrate recognition. , 2008, Biochemistry.
[21] L. Langeberg,et al. The protein kinase A anchoring protein mAKAP coordinates two integrated cAMP effector pathways , 2005, Nature.
[22] N. King,et al. Signaling Properties of a Non-metazoan Src Kinase and the Evolutionary History of Src Negative Regulation* , 2008, Journal of Biological Chemistry.
[23] Bao Q. Pham,et al. A dynamic mechanism for AKAP binding to RII isoforms of cAMP-dependent protein kinase. , 2006, Molecular cell.
[24] John Kuriyan,et al. Crystal structure of the Src family tyrosine kinase Hck , 1997, Nature.
[25] J. Kuriyan,et al. Activation of the Sire-family tyrosine kinase Hck by SH3 domain displacement , 1997, Nature.
[26] John D. Scott,et al. AKAP signalling complexes: focal points in space and time , 2004, Nature Reviews Molecular Cell Biology.
[27] Toshifumi Takao,et al. Transmembrane phosphoprotein Cbp regulates the activities of Src-family tyrosine kinases , 2000, Nature.
[28] A. Brand,et al. The Fes/Fer non-receptor tyrosine kinase cooperates with Src42A to regulate dorsal closure in Drosophila , 2006, Development.
[29] Susan S. Taylor,et al. PKA-I Holoenzyme Structure Reveals a Mechanism for cAMP-Dependent Activation , 2007, Cell.
[30] T. Kawakami,et al. Fer and Fps/Fes Participate in a Lyn-dependent Pathway from FcϵRI to Platelet-Endothelial Cell Adhesion Molecule 1 to Limit Mast Cell Activation* , 2006, Journal of Biological Chemistry.
[31] P. Seeburg,et al. Structural mechanism for STI-571 inhibition of abelson tyrosine kinase. , 2000, Science.
[32] C. Carlson,et al. Molecular basis of AKAP specificity for PKA regulatory subunits. , 2006, Molecular cell.
[33] John Kuriyan,et al. Structural Basis for the Inhibition of Tyrosine Kinase Activity of ZAP-70 , 2007, Cell.
[34] P. Greer. Closing in on the biological functions of fps/fes and fer , 2002, Nature Reviews Molecular Cell Biology.
[35] A. Prescott,et al. Structural insights into the regulation of PDK1 by phosphoinositides and inositol phosphates , 2004, The EMBO journal.
[36] G. Superti-Furga,et al. Structural Basis for the Autoinhibition of c-Abl Tyrosine Kinase , 2003, Cell.
[37] S. Harrison,et al. Crystal structures of c-Src reveal features of its autoinhibitory mechanism. , 1999, Molecular cell.
[38] Susan S. Taylor,et al. Dynamics of signaling by PKA. , 2005, Biochimica et biophysica acta.
[39] Satoru Takeuchi,et al. Structure of the Carboxyl-terminal Src Kinase, Csk* , 2002, The Journal of Biological Chemistry.
[40] M. Moran,et al. The common src homology region 2 domain of cytoplasmic signaling proteins is a positive effector of v-fps tyrosine kinase function , 1989, Molecular and cellular biology.
[41] Z. Jia,et al. Contributions of F-BAR and SH2 Domains of Fes Protein Tyrosine Kinase for Coupling to the FcεRI Pathway in Mast Cells , 2008, Molecular and Cellular Biology.
[42] R. Sakai,et al. Evidence that SH2 domains promote processive phosphorylation by protein-tyrosine kinases , 1995, Current Biology.
[43] P. Pellicena,et al. Enhanced Phosphorylation of Src Family Kinase Substrates Containing SH2 Domain Binding Sites* , 1998, The Journal of Biological Chemistry.
[44] T Pawson,et al. A noncatalytic domain conserved among cytoplasmic protein-tyrosine kinases modifies the kinase function and transforming activity of Fujinami sarcoma virus P130gag-fps , 1986, Molecular and cellular biology.