Identification of Novel Human WW Domain-containing Proteins by Cloning of Ligand Targets*
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A. Sparks | D. Fowlkes | B. Kay | D M Fowlkes | B K Kay | J. M. Carter | S J McConnell | A J Uveges | A B Sparks | G Pirozzi | J M Carter | A. Uveges | S. McConnell | Gregorio Pirozzi | S. J. Mcconnell | G. Pirozzi | J. Carter
[1] T. Hirano,et al. Functional murine interleukin 6 receptor with the intracisternal A particle gene product at its cytoplasmic domain. Its possible role in plasmacytomagenesis , 1990, The Journal of experimental medicine.
[2] A. Sparks,et al. Cloning of ligand targets: Systematic isolation of SH3 domain-containing proteins , 1996, Nature Biotechnology.
[3] S. Kumar,et al. Identification of a set of genes with developmentally down-regulated expression in the mouse brain. , 1992, Biochemical and biophysical research communications.
[4] B. André,et al. WWP, a new amino acid motif present in single or multiple copies in various proteins including dystrophin and the SH3-binding Yes-associated protein YAP65. , 1994, Biochemical and biophysical research communications.
[5] S. Sprang,et al. Structure of the first C2 domain of synaptotagmin I: A novel Ca2+/phospholipid-binding fold , 1995, Cell.
[6] Liddle's syndrome: Heritable human hypertension caused by mutations in the β subunit of the epithelial sodium channel , 1994, Cell.
[7] L. Schild,et al. A de novo missense mutation of the beta subunit of the epithelial sodium channel causes hypertension and Liddle syndrome, identifying a proline-rich segment critical for regulation of channel activity. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[8] M. Sudol,et al. The WW domain of Yes-associated protein binds a proline-rich ligand that differs from the consensus established for Src homology 3-binding modules. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[9] P. Leder,et al. Formin binding proteins bear WWP/WW domains that bind proline‐rich peptides and functionally resemble SH3 domains. , 1996, The EMBO journal.
[10] T. Pawson,et al. SH2 domains recognize specific phosphopeptide sequences , 1993, Cell.
[11] L. Schild,et al. Liddle disease caused by a missense mutation of beta subunit of the epithelial sodium channel gene. , 1996, The Journal of clinical investigation.
[12] K. Arai,et al. Molecular genetic analysis of the regulatory and catalytic domains of protein kinase C. , 1989, The Journal of biological chemistry.
[13] M. Kennedy,et al. The rat brain postsynaptic density fraction contains a homolog of the drosophila discs-large tumor suppressor protein , 1992, Neuron.
[14] L. G. Davis,et al. An inherited limb deformity created by insertional mutagenesis in a transgenic mouse , 1985, Nature.
[15] J. Wills,et al. Positionally independent and exchangeable late budding functions of the Rous sarcoma virus and human immunodeficiency virus Gag proteins , 1995, Journal of virology.
[16] R. Tjian,et al. Cloning and expression of AP-2, a cell-type-specific transcription factor that activates inducible enhancer elements. , 1988, Genes & development.
[17] A. Sparks,et al. Distinct ligand preferences of Src homology 3 domains from Src, Yes, Abl, Cortactin, p53bp2, PLCgamma, Crk, and Grb2. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[18] G. A. Martin,et al. Molecular cloning of two types of GAP complementary DNA from human placenta. , 1988, Science.
[19] L. Schild,et al. A mutation in the epithelial sodium channel causing Liddle disease increases channel activity in the Xenopus laevis oocyte expression system. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[20] P. Bork,et al. The WW domain: a signalling site in dystrophin? , 1994, Trends in biochemical sciences.
[21] C. M. Adams,et al. Mechanism by which Liddle's syndrome mutations increase activity of a human epithelial Na+ channel , 1995, Cell.
[22] Howard Riezman,et al. Ubiquitination of a Yeast Plasma Membrane Receptor Signals Its Ligand-Stimulated Endocytosis , 1996, Cell.
[23] L. Schild,et al. Identification of a PY motif in the epithelial Na channel subunits as a target sequence for mutations causing channel activation found in Liddle syndrome. , 1996, The EMBO journal.
[24] M. Devoto,et al. A common molecular basis for three inherited kidney stone diseases , 1996, Nature.
[25] T. Hunter,et al. A human peptidyl–prolyl isomerase essential for regulation of mitosis , 1996, Nature.
[26] M. Scheffner,et al. A family of proteins structurally and functionally related to the E6-AP ubiquitin-protein ligase. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[27] B. André,et al. NPI1, an essential yeast gene involved in induced degradation of Gap1 and Fur4 permeases, encodes the Rsp5 ubiquitin—protein ligase , 1995, Molecular microbiology.
[28] P. Bucher,et al. The rsp5‐domain is shared by proteins of diverse functions , 1995, FEBS letters.
[29] D. Baltimore,et al. Modular binding domains in signal transduction proteins , 1995, Cell.
[30] M. Sudol,et al. Towards prediction of cognate complexes between the WW domain and proline‐rich ligands , 1996, FEBS letters.
[31] S. Elledge,et al. Protein phosphatase 1 interacts with p53BP2, a protein which binds to the tumour suppressor p53 , 1995, FEBS letters.
[32] P. Bork,et al. Characterization of a novel protein‐binding module — the WW domain , 1995, FEBS letters.
[33] O. Staub,et al. WW domains of Nedd4 bind to the proline‐rich PY motifs in the epithelial Na+ channel deleted in Liddle's syndrome. , 1996, The EMBO journal.
[34] Tony Pawson,et al. Protein modules and signalling networks , 1995, Nature.
[35] S. Fields,et al. Two cellular proteins that bind to wild-type but not mutant p53. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[36] P. Bork,et al. Characterization of the Mammalian YAP (Yes-associated Protein) Gene and Its Role in Defining a Novel Protein Module, the WW Domain (*) , 1995, The Journal of Biological Chemistry.
[37] T. Russo,et al. A rat brain mRNA encoding a transcriptional activator homologous to the DNA binding domain of retroviral integrases. , 1991, Nucleic acids research.
[38] A. D. McLachlan,et al. Profile analysis: detection of distantly related proteins. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[39] J. Settleman,et al. Identification of a human rasGAP-related protein containing calmodulin-binding motifs. , 1994, The Journal of biological chemistry.
[40] Martin Scheffner,et al. Protein ubiquitination involving an E1–E2–E3 enzyme ubiquitin thioester cascade , 1995, Nature.
[41] M. Saraste,et al. Structure of the WW domain of a kinase-associated protein complexed with a proline-rich peptide , 1996, Nature.
[42] Aaron Ciechanover,et al. The ubiquitin-proteasome proteolytic pathway , 1994, Cell.
[43] M. Sudol,et al. WW domains and retrovirus budding , 1996, Nature.
[44] D. Speicher,et al. Molecular identification of a major palmitoylated erythrocyte membrane protein containing the src homology 3 motif. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[45] C. Heldin,et al. Ligand-induced polyubiquitination of the platelet-derived growth factor beta-receptor. , 1992, The Journal of biological chemistry.
[46] T. Südhof,et al. A single C2 domain from synaptotagmin I is sufficient for high affinity Ca2+/phospholipid binding. , 1993, The Journal of biological chemistry.
[47] S. Schreiber,et al. Biased combinatorial libraries: novel ligands for the SH3 domain of phosphatidylinositol 3-kinase , 1993 .