The modular logic of signaling proteins: building allosteric switches from simple binding domains.
暂无分享,去创建一个
[1] M. Roth,et al. Phosphatidylinositol 4,5-bisphosphate induces actin-based movement of raft-enriched vesicles through WASP-Arp2/3 , 2000, Current Biology.
[2] S. Shoelson,et al. Tandem SH2 Domains Confer High Specificity in Tyrosine Kinase Signaling* , 1998, The Journal of Biological Chemistry.
[3] W. Lim,et al. Improving SH3 domain ligand selectivity using a non-natural scaffold. , 2000, Chemistry & biology.
[4] Giulio Superti‐Furga,et al. The role of the linker between the SH2 domain and catalytic domain in the regulation and function of Src , 1997, The EMBO journal.
[5] 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.
[6] S. Shoelson,et al. Crystal Structure of the Tyrosine Phosphatase SHP-2 , 1998, Cell.
[7] M. Kirschner,et al. The Interaction between N-WASP and the Arp2/3 Complex Links Cdc42-Dependent Signals to Actin Assembly , 1999, Cell.
[8] C. Walsh,et al. Expression, purification, and characterization of SH2-containing protein tyrosine phosphatase, SH-PTP2. , 1993, The Journal of biological chemistry.
[9] Michael K. Rosen,et al. Autoinhibition and activation mechanisms of the Wiskott–Aldrich syndrome protein , 2000, Nature.
[10] D. Baltimore,et al. Modular binding domains in signal transduction proteins , 1995, Cell.
[11] R. Mullins,et al. Actin assembly mediated by Arp2/3 complex and WASP family proteins. , 2000, Methods in enzymology.
[12] Helmut E. Meyer,et al. Conformational Switch and Role of Phosphorylation in PAK Activation , 2001, Molecular and Cellular Biology.
[13] Yoshimi Takai,et al. Induction of filopodium formation by a WASP-related actin-depolymerizing protein N-WASP , 1998, Nature.
[14] S. Harrison,et al. Spatial constraints on the recognition of phosphoproteins by the tandem SH2 domains of the phosphatase SH-PTP2 , 1996, Nature.
[15] J. V. Moran,et al. Initial sequencing and analysis of the human genome. , 2001, Nature.
[16] Sheila M. Thomas,et al. Cellular functions regulated by Src family kinases. , 1997, Annual review of cell and developmental biology.
[17] B. Neel,et al. Tyrosyl phosphorylation and growth factor receptor association of the human corkscrew homologue, SH-PTP2. , 1993, The Journal of biological chemistry.
[18] E. Laue,et al. Structure of Cdc42 bound to the GTPase binding domain of PAK , 2000, Nature Structural Biology.
[19] B. Mayer,et al. Functions of SH2 and SH3 domains. , 1998, Current topics in microbiology and immunology.
[20] L. Lim,et al. A Conserved Negative Regulatory Region in αPAK: Inhibition of PAK Kinases Reveals Their Morphological Roles Downstream of Cdc42 and Rac1 , 1998, Molecular and Cellular Biology.
[21] F T Zenke,et al. Identification of a Central Phosphorylation Site in p21-activated Kinase Regulating Autoinhibition and Kinase Activity* , 1999, The Journal of Biological Chemistry.
[22] M. Schaller,et al. SH2- and SH3-mediated Interactions between Focal Adhesion Kinase and Src* , 1998, The Journal of Biological Chemistry.
[23] Zhenbiao Yang,et al. RHO Gtpases and the Actin Cytoskeleton , 2000 .
[24] M. Long,et al. Evolution of novel genes. , 2001, Current opinion in genetics & development.
[25] J. Kuriyan,et al. Structures of Src-family tyrosine kinases. , 1997, Current opinion in structural biology.
[26] J. Schlessinger. SH2/SH3 signaling proteins. , 1994, Current opinion in genetics & development.
[27] U. Francke,et al. Isolation of a novel gene mutated in Wiskott-Aldrich syndrome. , 1994, Cell.
[28] Thomas D. Pollard,et al. Regulation of Actin Polymerization by Arp2/3 Complex and WASp/Scar Proteins* , 1999, The Journal of Biological Chemistry.
[29] 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.
[30] K. Siminovitch,et al. Structure of Cdc42 in complex with the GTPase-binding domain of the ‘Wiskott–Aldrich syndrome’ protein , 1999, Nature.
[31] M. Kirschner,et al. Mechanism of N-Wasp Activation by Cdc42 and Phosphatidylinositol 4,5-Bisphosphate , 2000, The Journal of cell biology.
[32] A. Ducruix,et al. Signalling to actin: the Cdc42-N-WASP-Arp2/3 connection. , 1999, Chemistry & biology.
[33] I. Campbell,et al. The Role of the Src Homology 3-Src Homology 2 Interface in the Regulation of Src Kinases* , 2001, The Journal of Biological Chemistry.
[34] John Kuriyan,et al. Intramolecular Regulatory Interactions in the Src Family Kinase Hck Probed by Mutagenesis of a Conserved Tryptophan Residue* , 1998, The Journal of Biological Chemistry.
[35] W. Lim,et al. Integration of multiple signals through cooperative regulation of the N-WASP-Arp2/3 complex. , 2000, Science.
[36] T. Millard,et al. The Wiskott-Aldrich syndrome protein (WASP) family. , 2001, Trends in biochemical sciences.
[37] F. Jirik,et al. Characterization of protein tyrosine phosphatase SH-PTP2. Study of phosphopeptide substrates and possible regulatory role of SH2 domains. , 1994, The Journal of biological chemistry.
[38] M Paoli,et al. The stereochemical mechanism of the cooperative effects in hemoglobin revisited. , 1998, Annual review of biophysics and biomolecular structure.
[39] E. Nestler. Hard target: Understanding dopaminergic neurotransmission , 1994, Cell.
[40] M. T. Brown,et al. Regulation, substrates and functions of src. , 1996, Biochimica et biophysica acta.
[41] Michael J. Eck,et al. Three-dimensional structure of the tyrosine kinase c-Src , 1997, Nature.
[42] Wange Lu,et al. Structure of PAK1 in an Autoinhibited Conformation Reveals a Multistage Activation Switch , 2000, Cell.
[43] G. Superti-Furga,et al. Crosstalk between the catalytic and regulatory domains allows bidirectional regulation of Src , 2000, Nature Structural Biology.
[44] G. Superti-Furga,et al. The 2.35 A crystal structure of the inactivated form of chicken Src: a dynamic molecule with multiple regulatory interactions. , 1997, Journal of molecular biology.
[45] T. Pawson,et al. SH2 and SH3 domains in signal transduction. , 1994, Advances in cancer research.
[46] G. Superti-Furga,et al. Leucine 255 of Src couples intramolecular interactions to inhibition of catalysis , 1999, Nature Structural Biology.
[47] John Kuriyan,et al. Crystal structure of the Src family tyrosine kinase Hck , 1997, Nature.
[48] C. Walsh,et al. Potent Stimulation of SH-PTP2 Phosphatase Activity by Simultaneous Occupancy of Both SH2 Domains (*) , 1995, The Journal of Biological Chemistry.
[49] J. Kuriyan,et al. Activation of the Sire-family tyrosine kinase Hck by SH3 domain displacement , 1997, Nature.
[50] J. Frost,et al. Differential Effects of PAK1-activating Mutations Reveal Activity-dependent and -independent Effects on Cytoskeletal Regulation* , 1998, The Journal of Biological Chemistry.
[51] Tony Pawson,et al. Protein modules and signalling networks , 1995, Nature.
[52] T. Pollard,et al. Activation by Cdc 42 and PIP 2 of Wiskott-Aldrich Syndrome protein ( WASp ) Stimulates Actin Nucleation by Arp 2 / 3 Complex , 2000 .