Quantitative phosphoproteomics – an emerging key technology in signal‐transduction research
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[1] Nikolaj Blom,et al. NetPhosYeast: prediction of protein phosphorylation sites in yeast , 2007, Bioinform..
[2] M. Mann,et al. Phosphotyrosine Mapping in Bcr/Abl Oncoprotein Using Phosphotyrosine-specific Immonium Ion Scanning* , 2003, Molecular & Cellular Proteomics.
[3] B. A. Ballif,et al. ATM and ATR Substrate Analysis Reveals Extensive Protein Networks Responsive to DNA Damage , 2007, Science.
[4] J. Shabanowitz,et al. Peptide and protein sequence analysis by electron transfer dissociation mass spectrometry. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[5] E. O’Shea,et al. Combining chemical genetics and proteomics to identify protein kinase substrates. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[6] Lianshui Wang,et al. Quantitative Phosphoproteome Profiling of Wnt3a-mediated Signaling Network , 2007, Molecular & Cellular Proteomics.
[7] Yingda Xu,et al. Mitochondrial Phosphoproteome Revealed by an Improved IMAC Method and MS/MS/MS*S , 2007, Molecular & Cellular Proteomics.
[8] J. Shabanowitz,et al. Phosphoproteome Analysis of Capacitated Human Sperm , 2003, The Journal of Biological Chemistry.
[9] Jeroen Krijgsveld,et al. An experimental correction for arginine-to-proline conversion artifacts in SILAC-based quantitative proteomics , 2007, Nature Methods.
[10] K. Shokat,et al. Identification of otubain 1 as a novel substrate for the Yersinia protein kinase using chemical genetics and mass spectrometry , 2006, FEBS letters.
[11] M. Olivier,et al. Relative quantification of peptide phosphorylation in a complex mixture using 18O labeling. , 2007, Physiological genomics.
[12] A. Pandey,et al. Detection of tyrosine phosphorylated peptides by precursor ion scanning quadrupole TOF mass spectrometry in positive ion mode. , 2001, Analytical chemistry.
[13] Albert J R Heck,et al. Quantitative Phosphoproteomics of Early Elicitor Signaling in Arabidopsis*S , 2007, Molecular & Cellular Proteomics.
[14] J. Griffiths,et al. Multiple Reaction Monitoring to Identify Sites of Protein Phosphorylation with High Sensitivity *S , 2005, Molecular & Cellular Proteomics.
[15] Steven P. Gygi,et al. Large-scale phosphorylation analysis of mouse liver , 2007, Proceedings of the National Academy of Sciences.
[16] David M. Sabatini,et al. Building mammalian signalling pathways with RNAi screens , 2006, Nature Reviews Molecular Cell Biology.
[17] Joost W Gouw,et al. Highly robust, automated, and sensitive online TiO2-based phosphoproteomics applied to study endogenous phosphorylation in Drosophila melanogaster. , 2008, Journal of proteome research.
[18] F. Regnier,et al. Minimizing resolution of isotopically coded peptides in comparative proteomics. , 2002, Journal of proteome research.
[19] A. Ullrich,et al. Beyond Herceptin and Gleevec. , 2003, Current opinion in chemical biology.
[20] M. Snyder,et al. Protein microarray technology , 2006, Mechanisms of Ageing and Development.
[21] M. Kirschner,et al. Stable isotope-free relative and absolute quantitation of protein phosphorylation stoichiometry by MS. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[22] Zhou Songyang,et al. Use of an oriented peptide library to determine the optimal substrates of protein kinases , 1994, Current Biology.
[23] T. Hunter,et al. Oncogenic kinase signalling , 2001, Nature.
[24] Ruedi Aebersold,et al. Quantitative phosphoproteome analysis using a dendrimer conjugation chemistry and tandem mass spectrometry , 2005, Nature Methods.
[25] John Rush,et al. A common phosphotyrosine signature for the Bcr-Abl kinase. , 2006, Blood.
[26] H. Lane,et al. ERBB receptors and cancer: the complexity of targeted inhibitors , 2005, Nature Reviews Cancer.
[27] S. Mathivanan,et al. A curated compendium of phosphorylation motifs , 2007, Nature Biotechnology.
[28] S. Gygi,et al. An iterative statistical approach to the identification of protein phosphorylation motifs from large-scale data sets , 2005, Nature Biotechnology.
[29] M. Mann,et al. Mass spectrometry–based proteomics turns quantitative , 2005, Nature chemical biology.
[30] T. Hunter,et al. The Protein Kinase Complement of the Human Genome , 2002, Science.
[31] M. Mann,et al. Stable Isotope Labeling by Amino Acids in Cell Culture, SILAC, as a Simple and Accurate Approach to Expression Proteomics* , 2002, Molecular & Cellular Proteomics.
[32] Heribert Hirt,et al. Using phosphoproteomics to reveal signalling dynamics in plants. , 2007, Trends in plant science.
[33] O. Jensen. Interpreting the protein language using proteomics , 2006, Nature Reviews Molecular Cell Biology.
[34] J. Rush,et al. Immunoaffinity profiling of tyrosine phosphorylation in cancer cells , 2005, Nature Biotechnology.
[35] Steven P Gygi,et al. Comparative evaluation of mass spectrometry platforms used in large-scale proteomics investigations , 2005, Nature Methods.
[36] Yu Xue,et al. GPS: a comprehensive www server for phosphorylation sites prediction , 2005, Nucleic Acids Res..
[37] John R Yates,et al. Quantitative phosphoproteomic analysis of the tumor necrosis factor pathway. , 2006, Journal of proteome research.
[38] M. Mann,et al. Higher-energy C-trap dissociation for peptide modification analysis , 2007, Nature Methods.
[39] Ron Bose,et al. Phosphoproteomic analysis of Her2/neu signaling and inhibition. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[40] Erich A Nigg,et al. Phosphoproteome analysis of the human mitotic spindle. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[41] M. Snyder,et al. Charging it up: global analysis of protein phosphorylation. , 2006, Trends in genetics : TIG.
[42] F. White,et al. Temporal Dynamics of Tyrosine Phosphorylation in Insulin Signaling , 2006, Diabetes.
[43] T. Hunter,et al. Phosphopeptide mapping and phosphoamino acid analysis by electrophoresis and chromatography on thin‐layer cellulose plates , 1994, Electrophoresis.
[44] J. Massagué. TGF-beta signal transduction. , 1998, Annual review of biochemistry.
[45] Chao Zhang,et al. A second-site suppressor strategy for chemical genetic analysis of diverse protein kinases , 2005, Nature Methods.
[46] Benjamin J. Raphael,et al. Quantitative Time-Resolved Phosphoproteomic Analysis of Mast Cell Signaling1 , 2007, The Journal of Immunology.
[47] Y. Wang,et al. Phosphotyrosine Proteomic Study of Interferon α Signaling Pathway Using a Combination of Immunoprecipitation and Immobilized Metal Affinity Chromatography* , 2005, Molecular & Cellular Proteomics.
[48] James E. Ferrell,et al. Mechanisms of specificity in protein phosphorylation , 2007, Nature Reviews Molecular Cell Biology.
[49] P. Hoffmann,et al. Enrichment of multiphosphorylated peptides by immobilized metal affinity chromatography using Ga(III)- and Fe(III)-complexes. , 2007, Protein and peptide letters.
[50] M. Mann,et al. Temporal analysis of phosphotyrosine-dependent signaling networks by quantitative proteomics , 2004, Nature Biotechnology.
[51] N. Blom,et al. Prediction of post‐translational glycosylation and phosphorylation of proteins from the amino acid sequence , 2004, Proteomics.
[52] M. Collins,et al. Analysis of protein phosphorylation on a proteome‐scale , 2007, Proteomics.
[53] Lewis Y. Geer,et al. Analysis of phosphorylation sites on proteins from Saccharomyces cerevisiae by electron transfer dissociation (ETD) mass spectrometry , 2007, Proceedings of the National Academy of Sciences.
[54] M. Mann,et al. Parts per Million Mass Accuracy on an Orbitrap Mass Spectrometer via Lock Mass Injection into a C-trap*S , 2005, Molecular & Cellular Proteomics.
[55] Doris Hafenbradl,et al. Signal transduction therapy with rationally designed kinase inhibitors , 2006 .
[56] T. Hunter,et al. Transforming gene product of Rous sarcoma virus phosphorylates tyrosine , 1980, Proceedings of the National Academy of Sciences.
[57] Steven P Gygi,et al. Target-decoy search strategy for increased confidence in large-scale protein identifications by mass spectrometry , 2007, Nature Methods.
[58] Lewis C Cantley,et al. Hitting the Target: Emerging Technologies in the Search for Kinase Substrates , 2002, Science's STKE.
[59] Ruedi Aebersold,et al. PhosphoPep—a phosphoproteome resource for systems biology research in Drosophila Kc167 cells , 2007, Molecular systems biology.
[60] M. Tomita,et al. Phosphopeptide Enrichment by Aliphatic Hydroxy Acid-modified Metal Oxide Chromatography for Nano-LC-MS/MS in Proteomics Applications*S , 2007, Molecular & Cellular Proteomics.
[61] M. Mann,et al. Improved peptide identification in proteomics by two consecutive stages of mass spectrometric fragmentation. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[62] Timothy J Griffin,et al. iTRAQ reagent-based quantitative proteomic analysis on a linear ion trap mass spectrometer. , 2007, Journal of proteome research.
[63] Hanno Steen,et al. Phosphorylation Analysis by Mass Spectrometry , 2006, Molecular & Cellular Proteomics.
[64] K. Parker,et al. Multiplexed Protein Quantitation in Saccharomyces cerevisiae Using Amine-reactive Isobaric Tagging Reagents*S , 2004, Molecular & Cellular Proteomics.
[65] Jürgen Kreutzberger,et al. High Throughput Identification of Potential Arabidopsis Mitogen-activated Protein Kinases Substrates*S , 2005, Molecular & Cellular Proteomics.
[66] P. Schultz,et al. Profiling of tyrosine phosphorylation pathways in human cells using mass spectrometry , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[67] Blagoy Blagoev,et al. Mechanism of Divergent Growth Factor Effects in Mesenchymal Stem Cell Differentiation , 2005, Science.
[68] F. White,et al. Phosphoproteomic analysis of rat liver by high capacity IMAC and LC-MS/MS. , 2006, Journal of proteome research.
[69] Iain D G Campuzano,et al. Proteomic Analysis of in Vivo Phosphorylated Synaptic Proteins* , 2005, Journal of Biological Chemistry.
[70] Ronald J Moore,et al. Profiling signaling polarity in chemotactic cells , 2007, Proceedings of the National Academy of Sciences.
[71] B. Kobe,et al. Structural basis and prediction of substrate specificity in protein serine/threonine kinases , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[72] Robert A. Thompson,et al. Controlling deuterium isotope effects in comparative proteomics. , 2002, Analytical chemistry.
[73] Paul J Utz,et al. Protein microarrays for multiplex analysis of signal transduction pathways , 2004, Nature Medicine.
[74] John G. Albeck,et al. Collecting and organizing systematic sets of protein data , 2006, Nature Reviews Molecular Cell Biology.
[75] M. Posewitz,et al. Immobilized gallium(III) affinity chromatography of phosphopeptides. , 1999, Analytical chemistry.
[76] Hye Kyong Kweon,et al. Selective zirconium dioxide-based enrichment of phosphorylated peptides for mass spectrometric analysis. , 2006, Analytical chemistry.
[77] Marcus B Smolka,et al. Dynamic Changes in Protein-Protein Interaction and Protein Phosphorylation Probed with Amine-reactive Isotope Tag*S , 2005, Molecular & Cellular Proteomics.
[78] Karl Mechtler,et al. Phosphoproteomics strategies for the functional analysis of signal transduction , 2006, Proteomics.
[79] Peter R. Baker,et al. Quantitative Analysis of Synaptic Phosphorylation and Protein Expression*S , 2008, Molecular & Cellular Proteomics.
[80] Suresh Mathivanan,et al. Global proteomic profiling of phosphopeptides using electron transfer dissociation tandem mass spectrometry , 2007, Proceedings of the National Academy of Sciences.
[81] P. Bork,et al. Systematic Discovery of In Vivo Phosphorylation Networks , 2007, Cell.
[82] Steven P Gygi,et al. Large-scale characterization of HeLa cell nuclear phosphoproteins. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[83] Marcus B Smolka,et al. Proteome-wide identification of in vivo targets of DNA damage checkpoint kinases , 2007, Proceedings of the National Academy of Sciences.
[84] P. Roepstorff,et al. Highly Selective Enrichment of Phosphorylated Peptides from Peptide Mixtures Using Titanium Dioxide Microcolumns* , 2005, Molecular & Cellular Proteomics.
[85] G. Demetri,et al. Molecular basis for sunitinib efficacy and future clinical development , 2007, Nature Reviews Drug Discovery.
[86] A. Pandey,et al. A Novel Proteomic Approach for Specific Identification of Tyrosine Kinase Substrates Using [13C]Tyrosine* , 2004, Journal of Biological Chemistry.
[87] M. Mann,et al. Exponentially Modified Protein Abundance Index (emPAI) for Estimation of Absolute Protein Amount in Proteomics by the Number of Sequenced Peptides per Protein*S , 2005, Molecular & Cellular Proteomics.
[88] Bernhard Kuster,et al. Quantitative chemical proteomics reveals mechanisms of action of clinical ABL kinase inhibitors , 2007, Nature Biotechnology.
[89] D. Lauffenburger,et al. Applying computational modeling to drug discovery and development. , 2006, Drug discovery today.
[90] Martin R Larsen,et al. Evaluation of the impact of some experimental procedures on different phosphopeptide enrichment techniques. , 2007, Rapid communications in mass spectrometry : RCM.
[91] P. Cohen,et al. KESTREL: a powerful method for identifying the physiological substrates of protein kinases. , 2006, The Biochemical journal.
[92] Steven P Gygi,et al. The absolute quantification strategy: a general procedure for the quantification of proteins and post-translational modifications. , 2005, Methods.
[93] H. Zou,et al. Immobilized Zirconium Ion Affinity Chromatography for Specific Enrichment of Phosphopeptides in Phosphoproteome Analysis*S , 2007, Molecular & Cellular Proteomics.
[94] Scott A Gerber,et al. Large-scale phosphorylation analysis of alpha-factor-arrested Saccharomyces cerevisiae. , 2007, Journal of proteome research.
[95] K. Shokat,et al. Targets of the cyclin-dependent kinase Cdk1 , 2003, Nature.
[96] Laura A. Sullivan,et al. Temporal quantitation of mutant Kit tyrosine kinase signaling attenuated by a novel thiophene kinase inhibitor OSI-930 , 2005, Molecular Cancer Therapeutics.
[97] D. Lauffenburger,et al. Time-resolved Mass Spectrometry of Tyrosine Phosphorylation Sites in the Epidermal Growth Factor Receptor Signaling Network Reveals Dynamic Modules*S , 2005, Molecular & Cellular Proteomics.
[98] M. Gerstein,et al. Global analysis of protein phosphorylation in yeast , 2005, Nature.
[99] K. Resing,et al. Mapping protein post-translational modifications with mass spectrometry , 2007, Nature Methods.
[100] D. Lauffenburger,et al. Physicochemical modelling of cell signalling pathways , 2006, Nature Cell Biology.
[101] S. J. Deminoff,et al. An evolutionary proteomics approach identifies substrates of the cAMP-dependent protein kinase. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[102] Daniel S Spellman,et al. Quantitative phosphotyrosine proteomics of EphB2 signaling by stable isotope labeling with amino acids in cell culture (SILAC). , 2006, Journal of proteome research.
[103] J. Shabanowitz,et al. A neutral loss activation method for improved phosphopeptide sequence analysis by quadrupole ion trap mass spectrometry. , 2004, Analytical chemistry.
[104] H. Steen,et al. Quadrupole time-of-flight versus triple-quadrupole mass spectrometry for the determination of phosphopeptides by precursor ion scanning. , 2001, Journal of mass spectrometry : JMS.
[105] Alexandra ME Jones,et al. Quantitative phosphoproteomic analysis of plasma membrane proteins reveals regulatory mechanisms of plant innate immune responses , 2007, The Plant journal : for cell and molecular biology.
[106] M. Waterfield,et al. Quantification of Gel-separated Proteins and Their Phosphorylation Sites by LC-MS Using Unlabeled Internal Standards , 2005, Molecular & Cellular Proteomics.
[107] K. Shokat,et al. Chemical Genetics: Where Genetics and Pharmacology Meet , 2007, Cell.
[108] Blagoy Blagoev,et al. Quantitative proteomic assessment of very early cellular signaling events , 2007, Nature Biotechnology.
[109] M. Mann,et al. Quantitative Phosphoproteomics Applied to the Yeast Pheromone Signaling Pathway*S , 2005, Molecular & Cellular Proteomics.
[110] M. Mann,et al. Is Proteomics the New Genomics? , 2007, Cell.
[111] G. McAlister,et al. Supplemental activation method for high-efficiency electron-transfer dissociation of doubly protonated peptide precursors. , 2007, Analytical chemistry.
[112] Ruedi Aebersold,et al. Reproducible isolation of distinct, overlapping segments of the phosphoproteome , 2007, Nature Methods.
[113] Jens M. Rick,et al. Quantitative mass spectrometry in proteomics: a critical review , 2007, Analytical and bioanalytical chemistry.
[114] M. Gorenstein,et al. Quantitative proteomic analysis by accurate mass retention time pairs. , 2005, Analytical chemistry.
[115] M. Mann,et al. Global, In Vivo, and Site-Specific Phosphorylation Dynamics in Signaling Networks , 2006, Cell.
[116] M. Larsen,et al. Highly selective enrichment of phosphorylated peptides using titanium dioxide , 2006, Nature Protocols.
[117] M. Mann,et al. A practical recipe for stable isotope labeling by amino acids in cell culture (SILAC) , 2006, Nature Protocols.
[118] Crispin J. Miller,et al. Eight-channel iTRAQ Enables Comparison of the Activity of Six Leukemogenic Tyrosine Kinases*S , 2008, Molecular & Cellular Proteomics.
[119] N. Blom,et al. Sequence and structure-based prediction of eukaryotic protein phosphorylation sites. , 1999, Journal of molecular biology.
[120] J. García,et al. Functional and quantitative proteomics using SILAC in cancer research , 2008 .
[121] P. De Meyts,et al. Structural biology of insulin and IGF-1 receptors. , 2004, Novartis Foundation symposium.
[122] B. Ueberheide,et al. The utility of ETD mass spectrometry in proteomic analysis. , 2006, Biochimica et biophysica acta.
[123] J. Shabanowitz,et al. Phosphoproteome analysis by mass spectrometry and its application to Saccharomyces cerevisiae , 2002, Nature Biotechnology.
[124] M. Mann,et al. Tyrosine Phosphoproteomics of Fibroblast Growth Factor Signaling , 2004, Journal of Biological Chemistry.
[125] Lewis C Cantley,et al. A rapid method for determining protein kinase phosphorylation specificity , 2004, Nature Methods.
[126] Forest M White,et al. Quantitative Analysis of Phosphotyrosine Signaling Networks Triggered by CD3 and CD28 Costimulation in Jurkat Cells1 , 2006, The Journal of Immunology.
[127] J. Kornhauser,et al. PhosphoSite: A bioinformatics resource dedicated to physiological protein phosphorylation , 2004, Proteomics.
[128] Forest M White,et al. Phosphoproteomic approaches to elucidate cellular signaling networks. , 2006, Current opinion in biotechnology.
[129] M. Mann,et al. PHOSIDA (phosphorylation site database): management, structural and evolutionary investigation, and prediction of phosphosites , 2007, Genome Biology.
[130] Jürgen Cox,et al. Stable Isotope Labeling by Amino Acids in Cell Culture (SILAC) and Proteome Quantitation of Mouse Embryonic Stem Cells to a Depth of 5,111 Proteins*S , 2008, Molecular & Cellular Proteomics.
[131] Guido Dieterich,et al. Proteomics Analysis of Protein Kinases by Target Class-selective Prefractionation and Tandem Mass Spectrometry *S , 2007, Molecular & Cellular Proteomics.
[132] S. Schreiber,et al. Printing proteins as microarrays for high-throughput function determination. , 2000, Science.
[133] Sampsa Hautaniemi,et al. Effects of HER2 overexpression on cell signaling networks governing proliferation and migration , 2006, Molecular systems biology.
[134] Douglas A. Lauffenburger,et al. Common effector processing mediates cell-specific responses to stimuli , 2007, Nature.
[135] Trairak Pisitkun,et al. Quantitative phosphoproteomics of vasopressin-sensitive renal cells: regulation of aquaporin-2 phosphorylation at two sites. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[136] F. McLafferty,et al. Electron capture dissociation for structural characterization of multiply charged protein cations. , 2000, Analytical chemistry.
[137] L. Silengo,et al. Systematic Analysis of the Epidermal Growth Factor Receptor by Mass Spectrometry Reveals Stimulation-dependent Multisite Phosphorylation*S , 2005, Molecular & Cellular Proteomics.
[138] Mindy I. Davis,et al. A quantitative analysis of kinase inhibitor selectivity , 2008, Nature Biotechnology.
[139] A. Heck,et al. Selective isolation at the femtomole level of phosphopeptides from proteolytic digests using 2D-NanoLC-ESI-MS/MS and titanium oxide precolumns. , 2004, Analytical chemistry.
[140] Peter G. Schultz,et al. A chemical switch for inhibitor-sensitive alleles of any protein kinase , 2000, Nature.
[141] K. Shokat,et al. Engineering unnatural nucleotide specificity for Rous sarcoma virus tyrosine kinase to uniquely label its direct substrates. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[142] Forest M. White,et al. Modeling HER2 Effects on Cell Behavior from Mass Spectrometry Phosphotyrosine Data , 2006, PLoS Comput. Biol..
[143] Alma L. Burlingame,et al. Comprehensive Identification of Phosphorylation Sites in Postsynaptic Density Preparations*S , 2006, Molecular & Cellular Proteomics.
[144] Z. Hao,et al. On-line LC-MS approach combining collision-induced dissociation (CID), electron-transfer dissociation (ETD), and CID of an isolated charge-reduced species for the trace-level characterization of proteins with post-translational modifications. , 2007, Journal of proteome research.
[145] S. Gygi,et al. Absolute quantification of proteins and phosphoproteins from cell lysates by tandem MS , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[146] Jorge Cortes,et al. Flying under the radar: the new wave of BCR–ABL inhibitors , 2007, Nature Reviews Drug Discovery.
[147] U. Reimer,et al. Peptide Arrays for Kinase Profiling , 2005, Chembiochem : a European journal of chemical biology.
[148] Sam A. Johnson,et al. Kinomics: methods for deciphering the kinome , 2004, Nature Methods.
[149] Matthias Mann,et al. A Mass Spectrometry-based Proteomic Approach for Identification of Serine/Threonine-phosphorylated Proteins by Enrichment with Phospho-specific Antibodies , 2002, Molecular & Cellular Proteomics.
[150] D. Lauffenburger,et al. Multiple reaction monitoring for robust quantitative proteomic analysis of cellular signaling networks , 2007, Proceedings of the National Academy of Sciences.
[151] Jennifer L. Snead,et al. A coupled chemical-genetic and bioinformatic approach to Polo-like kinase pathway exploration. , 2007, Chemistry & biology.
[152] Robert J Beynon,et al. Metabolic Labeling of Proteins for Proteomics* , 2005, Molecular & Cellular Proteomics.
[153] Steven P Gygi,et al. A probability-based approach for high-throughput protein phosphorylation analysis and site localization , 2006, Nature Biotechnology.
[154] Steven P Gygi,et al. Phosphoproteomic Analysis of the Developing Mouse Brain*S , 2004, Molecular & Cellular Proteomics.
[155] Laura A. Sullivan,et al. Global Survey of Phosphotyrosine Signaling Identifies Oncogenic Kinases in Lung Cancer , 2007, Cell.
[156] Michael B. Yaffe,et al. Scansite 2.0: proteome-wide prediction of cell signaling interactions using short sequence motifs , 2003, Nucleic Acids Res..
[157] Alma L Burlingame,et al. A semisynthetic epitope for kinase substrates , 2007, Nature Methods.