Systematic development of an enzymatic phosphorylation assay compatible with mass spectrometric detection
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H. Lingeman | T. Letzel | H. Irth | H. Lingeman | H. Irth | T. Letzel | A. R. Boer
[1] H. Cheng,et al. Primary structural determinants essential for potent inhibition of cAMP-dependent protein kinase by inhibitory peptides corresponding to the active portion of the heat-stable inhibitor protein. , 1989, The Journal of biological chemistry.
[2] A. Smith,et al. A potent synthetic peptide inhibitor of the cAMP-dependent protein kinase. , 1986, The Journal of biological chemistry.
[3] R. Aebersold,et al. Identification by electrospray ionization mass spectrometry of the sites of tyrosine phosphorylation induced in activated Jurkat T cells on the protein tyrosine kinase ZAP-70. , 1994, The Journal of biological chemistry.
[4] F. B. Simpson,et al. Beyond enzyme kinetics: direct determination of mechanisms by stopped-flow mass spectrometry. , 1997, Bioorganic & medicinal chemistry.
[5] M. Mann,et al. Analysis of receptor signaling pathways by mass spectrometry: identification of vav-2 as a substrate of the epidermal and platelet-derived growth factor receptors. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[6] R. C. Adlakha,et al. Threonine phosphorylation is associated with mitosis in HeLa cells , 1989, FEBS letters.
[7] L. Konermann,et al. From small-molecule reactions to protein folding: studying biochemical kinetics by stopped-flow electrospray mass spectrometry. , 2001, Analytical biochemistry.
[8] L. Sérani,et al. Stabilization of gas-phase noncovalent macromolecular complexes in electrospray mass spectrometry using aqueous triethylammonium bicarbonate buffer. , 2001, Analytical chemistry.
[9] M. Posewitz,et al. Immobilized gallium(III) affinity chromatography of phosphopeptides. , 1999, Analytical chemistry.
[10] G. Neubauer,et al. The in vitro and in vivo phosphotyrosine map of activated MuSK. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[11] C. Bertozzi,et al. Kinetic analysis of NodST sulfotransferase using an electrospray ionization mass spectrometry assay. , 2002, Biochemistry.
[12] H. Hayashi,et al. Activation of protein phosphatase 2A by cAMP‐dependent protein kinase‐catalyzed phosphorylation of the 74‐kDa B″ (δ) regulatory subunit in vitro and identification of the phosphorylation sites , 1998, FEBS letters.
[13] Thomas Letzel,et al. On-line coupling of high-performance liquid chromatography to a continuous-flow enzyme assay based on electrospray ionization mass spectrometry. , 2004, Analytical chemistry.
[14] D. Walsh,et al. Subunit phosphorylation and activation of skeletal muscle phosphorylase kinase by the cAMP-dependent protein kinase. Divalent metal ion, ATP, and protein concentration dependence. , 1985, The Journal of biological chemistry.
[15] B. Chait,et al. Enrichment analysis of phosphorylated proteins as a tool for probing the phosphoproteome , 2001, Nature Biotechnology.
[16] Forest M. White,et al. Phosphorylated Peptides Are Naturally Processed and Presented by Major Histocompatibility Complex Class I Molecules in Vivo , 2000, The Journal of experimental medicine.
[17] Hanno Steen,et al. Analysis of protein phosphorylation using mass spectrometry: deciphering the phosphoproteome. , 2002, Trends in biotechnology.
[18] N. Packer,et al. Protein phosphorylation: technologies for the identification of phosphoamino acids. , 1998, Journal of chromatography. A.
[19] R. Aebersold,et al. A systematic approach to the analysis of protein phosphorylation , 2001, Nature Biotechnology.
[20] J. H. Wang,et al. Effect of Mg2+ concentration on the cAMP-dependent protein kinase-catalyzed activation of rabbit skeletal muscle phosphorylase kinase. , 1977, The Journal of biological chemistry.
[21] R. Nixon,et al. Serine‐23 Is a Major Protein Kinase A Phosphorylation Site on the Amino‐Terminal Head Domain of the Middle Molecular Mass Subunit of Neurofilament Proteins , 1999, Journal of neurochemistry.
[22] S. Papa,et al. The nuclear‐encoded 18 kDa (IP) AQDQ subunit of bovine heart complex I is phosphorylated by the mitochondrial cAMP‐dependent protein kinase , 1996, FEBS letters.
[23] E. Ban,et al. Determination of protein phosphorylation by extracellular signal-regulated kinase using capillary electrophoresis and matrix-assisted laser desorption ionization time-of-flight mass spectrometry. , 2002, Journal of chromatography. A.
[24] E. Pasquale,et al. Multiple in vivo tyrosine phosphorylation sites in EphB receptors. , 1999, Biochemistry.
[25] S. Taylor,et al. Dynamics of cAMP-dependent protein kinase. , 2001, Chemical reviews.
[26] J. Erlichman,et al. Cyclic AMP-dependent protein kinase from bovine heart muscle. , 1974, Methods in enzymology.
[27] T. Hunter,et al. Signaling—2000 and Beyond , 2000, Cell.
[28] D. Edwards,et al. Identification of a Phosphorylation Site in the Hinge Region of the Human Progesterone Receptor and Additional Amino-terminal Phosphorylation Sites* , 2001, The Journal of Biological Chemistry.
[29] D. Graves,et al. Properties of the gamma subunit of phosphorylase kinase. , 1987, The Journal of biological chemistry.
[30] C. Y. Huang,et al. Phosphorylase kinase, a metal ion-dependent dual specificity kinase. , 1993, The Journal of biological chemistry.
[31] H. Desaire,et al. A strategy for the determination of enzyme kinetics using electrospray ionization with an ion trap mass spectrometer. , 2001, Analytical chemistry.
[32] J. Henion,et al. Real-Time Reaction Monitoring by Continuous-Introduction Ion-Spray Tandem Mass Spectrometry , 1989 .
[33] S. Papa,et al. Topology of the mitochondrial cAMP‐dependent protein kinase and its substrates , 1996, FEBS letters.
[34] J. Erlichman,et al. Reversible autophosphorylation of a cyclic 3':5'-AMP-dependent protein kinase from bovine cardiac muscle. , 1975, The Journal of biological chemistry.
[35] A. Hinnebusch,et al. Identification of phosphorylation sites in proteins separated by polyacrylamide gel electrophoresis. , 1998, Analytical chemistry.
[36] B. Chait,et al. Analysis of phosphorylated proteins and peptides by mass spectrometry. , 2001, Current opinion in chemical biology.
[37] M. Mann,et al. Analysis of proteins and proteomes by mass spectrometry. , 2001, Annual review of biochemistry.
[38] D. Davies,et al. Phosphorylation of phenylalanine ammonia‐lyase: evidence for a novel protein kinase and identification of the phosphorylated residue , 1999, FEBS letters.
[39] R. Pederson,et al. Investigation of Glucose-dependent Insulinotropic Polypeptide(1-42) and Glucagon-like Peptide-1-(7-36) Degradation in Vitro by Dipeptidyl Peptidase IV Using Matrix-assisted Laser Desorption/Ionization-Time of Flight Mass Spectrometry , 1996, The Journal of Biological Chemistry.
[40] D. Lawrence,et al. Is Protein Kinase Substrate Efficacy a Reliable Barometer for Successful Inhibitor Design? (*) , 1996, The Journal of Biological Chemistry.
[41] M. Sussman,et al. Mass Spectrometric Resolution of Reversible Protein Phosphorylation in Photosynthetic Membranes ofArabidopsis thaliana* , 2001, The Journal of Biological Chemistry.
[42] Q. P. Lei,et al. Kinetic studies on the rate of hydrolysis of N-ethyl-N'-(dimethylaminopropyl)carbodiimide in aqueous solutions using mass spectrometry and capillary electrophoresis. , 2002, Analytical biochemistry.
[43] G. Siuzdak,et al. Monitoring Enzyme Catalysis with Mass Spectrometry* , 2000, The Journal of Biological Chemistry.
[44] E. Krebs,et al. Comparison of adenosine 3':5'-monophosphate-dependent protein kinases from rabbit skeletal and bovine heart muscle. , 1975, The Journal of biological chemistry.
[45] Shaolian Zhou,et al. Effects of solvent composition on molecular ion response in electrospray mass spectrometry: Investigation of the ionization processes , 1995 .
[46] C. Schmitz‐Peiffer,et al. Use of a synthetic dodecapeptide (malantide) to measure the cyclic AMP-dependent protein kinase activity ratio in a variety of tissues. , 1990, The Biochemical journal.
[47] S. G. Waley,et al. Use of electrospray mass spectrometry to directly observe an acyl enzyme intermediate in β‐lactamase catalysis , 1990, FEBS letters.
[48] E. Bissonette,et al. Activated 3′,5′-Cyclic AMP-dependent Protein Kinase Is Sufficient to Induce Neuroendocrine-like Differentiation of the LNCaP Prostate Tumor Cell Line* , 2000, The Journal of Biological Chemistry.
[49] D. Walsh,et al. Protein kinase inhibitor-(6-22)-amide peptide analogs with standard and nonstandard amino acid substitutions for phenylalanine 10. Inhibition of cAMP-dependent protein kinase. , 1989, The Journal of biological chemistry.