Reference-facilitated Phosphoproteomics
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Garry L Corthals | Susumu Y. Imanishi | G. Corthals | J. Eriksson | A. de Thonel | John E Eriksson | Saima E. Ferraris | Aurélie de Thonel | Susumu Y Imanishi | Hanna-Mari Pallari | Vitaly Kochin | Saima E Ferraris | Hanna-Mari Pallari | V. Kochin
[1] Toshihide Nishimura,et al. Protein identification from product ion spectra of peptides validated by correlation between measured and predicted elution times in liquid chromatography/mass spectrometry , 2005, Proteomics.
[2] 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.
[3] J. Eriksson,et al. Cdk5 Regulates the Organization of Nestin and Its Association with p35 , 2003, Molecular and Cellular Biology.
[4] D. Goodlett,et al. Identification of phosphorylation sites using microimmobilized metal affinity chromatography. , 2005, Methods in enzymology.
[5] Akira Fujishima,et al. Titanium dioxide photocatalysis , 2000 .
[6] A. Stensballe,et al. Phosphoric acid enhances the performance of Fe(III) affinity chromatography and matrix-assisted laser desorption/ionization tandem mass spectrometry for recovery, detection and sequencing of phosphopeptides. , 2004, Rapid communications in mass spectrometry : RCM.
[7] Lea Sistonen,et al. Multisite phosphorylation provides sophisticated regulation of transcription factors. , 2002, Trends in biochemical sciences.
[8] Steven P Gygi,et al. Phosphoproteomic Analysis of the Developing Mouse Brain*S , 2004, Molecular & Cellular Proteomics.
[9] J. Rush,et al. Immunoaffinity profiling of tyrosine phosphorylation in cancer cells , 2005, Nature Biotechnology.
[10] A. Stensballe,et al. Characterization of phosphoproteins from electrophoretic gels by nanoscale Fe(III) affinity chromatography with off‐line mass spectrometry analysis , 2001, Proteomics.
[11] Li-Huei Tsai,et al. A decade of CDK5 , 2001, Nature Reviews Molecular Cell Biology.
[12] M. Kitzmann,et al. Cyclin dependent kinase 5, cdk5, is a positive regulator of myogenesis in mouse C2 cells. , 1997, Journal of cell science.
[13] M. Omary,et al. "Heads and tails" of intermediate filament phosphorylation: multiple sites and functional insights. , 2006, Trends in biochemical sciences.
[14] U. Lendahl,et al. Transient expression of the intermediate filament nestin during skeletal muscle development. , 1993, Journal of cell science.
[15] J. Miller,et al. Intermediate filaments in cardiac myogenesis: nestin in the developing mouse heart. , 1995, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[16] Akira Sano,et al. Titania as a Chemo-affinity Support for the Column-switching HPLC Analysis of Phosphopeptides: Application to the Characterization of Phosphorylation Sites in Proteins by Combination with Protease Digestion and Electrospray Ionization Mass Spectrometry , 2004, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[17] R. McKay,et al. CNS stem cells express a new class of intermediate filament protein , 1990, Cell.
[18] J. Shabanowitz,et al. Phosphoproteome analysis by mass spectrometry and its application to Saccharomyces cerevisiae , 2002, Nature Biotechnology.
[19] Steven P Gygi,et al. A probability-based approach for high-throughput protein phosphorylation analysis and site localization , 2006, Nature Biotechnology.
[20] D. Arnott,et al. Mass Spectrometric Contributions to the Practice of Phosphorylation Site Mapping through 2003 , 2005, Molecular & Cellular Proteomics.
[21] K. Gevaert,et al. Global phosphoproteome analysis on human HepG2 hepatocytes using reversed‐phase diagonal LC , 2005, Proteomics.
[22] M. Mann,et al. Stop and go extraction tips for matrix-assisted laser desorption/ionization, nanoelectrospray, and LC/MS sample pretreatment in proteomics. , 2003, Analytical chemistry.
[23] P. Roepstorff,et al. Highly Selective Enrichment of Phosphorylated Peptides from Peptide Mixtures Using Titanium Dioxide Microcolumns* , 2005, Molecular & Cellular Proteomics.
[24] J. Eriksson,et al. Approaches to study posttranslational regulation of intermediate filament proteins. , 2004, Methods in cell biology.
[25] O. Jensen. Modification-specific proteomics: characterization of post-translational modifications by mass spectrometry. , 2004, Current opinion in chemical biology.
[26] Susumu Y. Imanishi,et al. Fast track to a phosphoprotein sketch – MALDI‐TOF characterization of TLC‐based tryptic phosphopeptide maps at femtomolar detection sensitivity , 2006, Proteomics.
[27] T. Hunter,et al. Signaling—2000 and Beyond , 2000, Cell.
[28] A. Stensballe,et al. Large-scale Analysis of in Vivo Phosphorylated Membrane Proteins by Immobilized Metal Ion Affinity Chromatography and Mass Spectrometry* , 2003, Molecular & Cellular Proteomics.
[29] T. Yip,et al. Mapping and sequence‐specific identification of phosphopeptides in unfractionated protein digest mixtures by matrix‐assisted laser desorption/ionization time‐of‐flight mass spectrometry , 1992, FEBS letters.
[30] O. Jensen,et al. Phosphoric acid as a matrix additive for MALDI MS analysis of phosphopeptides and phosphoproteins. , 2004, Analytical chemistry.
[31] Y. Ishihama,et al. Specificity of immobilized metal affinity-based IMAC/C18 tip enrichment of phosphopeptides for protein phosphorylation analysis. , 2005, Analytical chemistry.
[32] L. Tsai,et al. Cdk5 behind the wheel: a role in trafficking and transport? , 2002, Trends in cell biology.
[33] M. Mann,et al. Quantitative Phosphoproteomics Applied to the Yeast Pheromone Signaling Pathway*S , 2005, Molecular & Cellular Proteomics.
[34] N. Lamb,et al. Cyclin dependent kinase 5 , cdk 5 , is a positive regulator of myogenesis in mouse C 2 cells , 1997 .
[35] Rolf Apweiler,et al. Annotating the Human Proteome , 2005, Molecular & Cellular Proteomics.
[36] D. Paulin,et al. Desmin: a major intermediate filament protein essential for the structural integrity and function of muscle. , 2004, Experimental cell research.
[37] M. Omary,et al. Cellular integrity plus: organelle-related and protein-targeting functions of intermediate filaments. , 2005, Trends in cell biology.
[38] Forest M White,et al. Global phosphoproteome of HT-29 human colon adenocarcinoma cells. , 2005, Journal of proteome research.
[39] S. E. F. Tran,et al. Instant decisions: transcription-independent control of death-receptor-mediated apoptosis. , 2004, Trends in biochemical sciences.
[40] 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.
[41] Susumu Y. Imanishi,et al. Optimization of phosphopeptide elution conditions in immobilized Fe(III) affinity chromatography , 2007, Proteomics.
[42] Richard J. Goss,et al. 10 – Heads and Tails , 1969 .
[43] R. Appel,et al. Guidelines for the next 10 years of proteomics , 2009, Proteomics.
[44] M. Mann,et al. Global, In Vivo, and Site-Specific Phosphorylation Dynamics in Signaling Networks , 2006, Cell.
[45] P. Coulombe,et al. Cytoplasmic intermediate filaments revealed as dynamic and multipurpose scaffolds , 2004, Nature Cell Biology.
[46] P. Roepstorff,et al. Phospho‐proteomics: Evaluation of the use of enzymatic de‐phosphorylation and differential mass spectrometric peptide mass mapping for site specific phosphorylation assignment in proteins separated by gel electrophoresis , 2001, Proteomics.
[47] A. Churg,et al. Mechanisms of mineral dust-induced emphysema. , 1997, Environmental health perspectives.
[48] Iain D G Campuzano,et al. Proteomic Analysis of in Vivo Phosphorylated Synaptic Proteins* , 2005, Journal of Biological Chemistry.
[49] J. Eriksson,et al. Intermediate filament dynamics. , 1992, Current opinion in cell biology.
[50] Hiroshi Nakamura,et al. Chemo-affinity of Titania for the Column-switching HPLC Analysis of Phosphopeptides , 2004, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[51] B. Chait,et al. Enrichment analysis of phosphorylated proteins as a tool for probing the phosphoproteome , 2001, Nature Biotechnology.
[52] K. Huang,et al. Dephosphorylation of rabbit skeletal muscle glycogen synthase (phosphorylated by cyclic AMP-independent synthase kinase 1) by phosphatases. , 1981, The Journal of biological chemistry.
[53] C. Borchers,et al. Phosphatase-directed phosphorylation-site determination: a synthesis of methods for the detection and identification of phosphopeptides. , 2005, Journal of proteome research.
[54] A. Burlingame,et al. Phosphorylation state of postsynaptic density proteins , 2005, Journal of neurochemistry.