A Comprehensive Analysis of the 14-3-3 Interactome in Barley Leaves Using a Complementary Proteomics and Two-Hybrid Approach1[C][OA]
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Giulia Friso | P. Schoonheim | G. Friso | K. V. van Wijk | Helena Veiga | Daniel Da Costa Pereira | Albertus H. de Boer | Peter J. Schoonheim | Klaas J. van Wijk | Helena Veiga | Daniel da Costa Pereira | A. D. de Boer | H. Veiga | Daniel da Costa Pereira
[1] S. Fields,et al. A novel genetic system to detect proteinprotein interactions , 1989, Nature.
[2] M. Yaffe,et al. The Structural Basis for 14-3-3:Phosphopeptide Binding Specificity , 1997, Cell.
[3] Ben Scheres,et al. Polar PIN Localization Directs Auxin Flow in Plants , 2006, Science.
[4] Y. Ikeda,et al. Specific Binding of a 14-3-3 Protein to Autophosphorylated WPK4, an SNF1-related Wheat Protein Kinase, and to WPK4-phosphorylated Nitrate Reductase* , 2000, The Journal of Biological Chemistry.
[5] Fang Chen,et al. The rice 14-3-3 gene family and its involvement in responses to biotic and abiotic stress. , 2006, DNA research : an international journal for rapid publication of reports on genes and genomes.
[6] E. Craig,et al. Genomic libraries and a host strain designed for highly efficient two-hybrid selection in yeast. , 1996, Genetics.
[7] P. Schoonheim,et al. 14-3-3 adaptor proteins are intermediates in ABA signal transduction during barley seed germination. , 2007, The Plant journal : for cell and molecular biology.
[8] R. Ozawa,et al. A comprehensive two-hybrid analysis to explore the yeast protein interactome , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[9] A. Carr,et al. The 14-3-3 proteins encoded by the BMH1 and BMH2 genes are essential in the yeast Saccharomyces cerevisiae and can be replaced by a plant homologue. , 1995, European journal of biochemistry.
[10] M. V. van Hemert,et al. 14‐3‐3 proteins: key regulators of cell division, signalling and apoptosis , 2001, BioEssays : news and reviews in molecular, cellular and developmental biology.
[11] Juqiang Yan,et al. An ankyrin repeat-containing protein plays a role in both disease resistance and antioxidation metabolism. , 2002, The Plant journal : for cell and molecular biology.
[12] E Ruoslahti,et al. Isolation of high-affinity peptide antagonists of 14-3-3 proteins by phage display. , 1999, Biochemistry.
[13] D. Campbell,et al. 14-3-3-affinity purification of over 200 human phosphoproteins reveals new links to regulation of cellular metabolism, proliferation and trafficking. , 2004, The Biochemical journal.
[14] K. Werdan,et al. Accumulation of bicarbonate in intact chloroplasts following a pH gradient. , 1972, Biochimica et biophysica acta.
[15] A. Stensballe,et al. Binding of 14-3-3 Protein to the Plasma Membrane H+-ATPase AHA2 Involves the Three C-terminal Residues Tyr946-Thr-Val and Requires Phosphorylation of Thr947 * , 1999, The Journal of Biological Chemistry.
[16] S. Kim,et al. ABFs, a Family of ABA-responsive Element Binding Factors* , 2000, The Journal of Biological Chemistry.
[17] N. de Vetten,et al. A maize protein associated with the G-box binding complex has homology to brain regulatory proteins. , 1992, The Plant cell.
[18] R. Schiestl,et al. Improved method for high efficiency transformation of intact yeast cells. , 1992, Nucleic acids research.
[19] E. Krebs,et al. p90(RSK) is a serum-stimulated Na+/H+ exchanger isoform-1 kinase. Regulatory phosphorylation of serine 703 of Na+/H+ exchanger isoform-1. , 1999, The Journal of biological chemistry.
[20] A. Aitken,et al. A plant homologue to mammalian brain 14‐3‐3 protein and protein kinase C inhibitor , 1992, FEBS letters.
[21] G. Paul,et al. 14‐3‐3 Proteins: Regulators of numerous eukaryotic proteins , 2005, IUBMB life.
[22] A. Wynshaw-Boris,et al. Role of 14-3-3 proteins in eukaryotic signaling and development. , 2005, Current topics in developmental biology.
[23] Robert J Ferl,et al. Consummating signal transduction: the role of 14-3-3 proteins in the completion of signal-induced transitions in protein activity. , 2002, The Plant cell.
[24] G. Friso,et al. In-Depth Analysis of the Thylakoid Membrane Proteome of Arabidopsis thaliana Chloroplasts: New Proteins, New Functions, and a Plastid Proteome Database On-line version contains Web-only data. , 2004, The Plant Cell Online.
[25] J. Chory,et al. Brassinosteroids Regulate Dissociation of BKI1, a Negative Regulator of BRI1 Signaling, from the Plasma Membrane , 2006, Science.
[26] E. Panisko,et al. Applications of the yeast two-hybrid system. , 1999, Methods.
[27] Ross D. Alexander,et al. A proteomic analysis of 14‐3‐3 binding proteins from developing barley grains , 2006, Proteomics.
[28] S. Huber. Faculty Opinions recommendation of 14-3-3 proteins regulate intracellular localization of the bZIP transcriptional activator RSG. , 2001 .
[29] R. Frank,et al. 14-3-3 Proteins Are Constituents of the Insoluble Glycoprotein Framework of the Chlamydomonas Cell Wall Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.010611. , 2003, The Plant Cell Online.
[30] F. McCormick,et al. Bcr and Raf form a complex in vivo via 14‐3‐3 proteins. , 1995, The EMBO journal.
[31] A. Aitken,et al. Novel brain 14‐3‐3 interacting proteins involved in neurodegenerative disease , 2005, The FEBS journal.
[32] H. Goodman,et al. Cloning and expression of an Arabidopsis gene encoding a putative peroxisomal ascorbate peroxidase , 1997, Plant Molecular Biology.
[33] A. Aitken,et al. Phosphorylated nitrate reductase from spinach leaves is inhibited by 14-3-3 proteins and activated by fusicoccin , 1996, Current Biology.
[34] D. Klein,et al. Melatonin synthesis: 14-3-3-dependent activation and inhibition of arylalkylamine N-acetyltransferase mediated by phosphoserine-205. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[35] M. Takano,et al. The Rice COLEOPTILE PHOTOTROPISM1 Gene Encoding an Ortholog of Arabidopsis NPH3 Is Required for Phototropism of Coleoptiles and Lateral Translocation of Auxinw⃞ , 2005, The Plant Cell Online.
[36] M. Robertson. Two Transcription Factors Are Negative Regulators of Gibberellin Response in the HvSPY-Signaling Pathway in Barley Aleurone[w] , 2004, Plant Physiology.
[37] F. D. Carlson. Physiological and Biochemical Aspects of Nervous Integration , 1968 .
[38] M. Peggie,et al. 14‐3‐3s regulate fructose‐2,6‐bisphosphate levels by binding to PKB‐phosphorylated cardiac fructose‐2,6‐bisphosphate kinase/phosphatase , 2003, The EMBO journal.
[39] A Aitken,et al. Phosphorylation-dependent interactions between enzymes of plant metabolism and 14-3-3 proteins. , 1999, The Plant journal : for cell and molecular biology.
[40] A. Visser,et al. Single amino acid variation in barley 14-3-3 proteins leads to functional isoform specificity in the regulation of nitrate reductase. , 2005, The Plant journal : for cell and molecular biology.
[41] M. Mukherji,et al. Phosphoproteomics in analyzing signaling pathways , 2005, Expert review of proteomics.
[42] Frederik Börnke,et al. The variable C-terminus of 14-3-3 proteins mediates isoform-specific interaction with sucrose-phosphate synthase in the yeast two-hybrid system. , 2005, Journal of plant physiology.
[43] C. MacKintosh,et al. Metabolic enzymes as targets for 14-3-3 proteins , 2002, Plant Molecular Biology.
[44] P. Allen,et al. Interaction of 14-3-3 with Signaling Proteins Is Mediated by the Recognition of Phosphoserine , 1996, Cell.
[45] H. Abé,et al. Two Proton Pump Interactors Identified from a Direct Phosphorylation Screening of a Rice cDNA Library by Using a Recombinant BRI1 Receptor Kinase , 2004 .
[46] C. MacKintosh,et al. 14‐3‐3s regulate global cleavage of their diverse binding partners in sugar‐starved Arabidopsis cells , 2000, The EMBO journal.
[47] E. Lagendijk,et al. Characterization of the yeast BMH1 gene encoding a putative protein homologous to mammalian protein kinase II activators and protein kinase C inhibitors , 1992, FEBS letters.