Quantitative Glycomics of Human Whole Serum Glycoproteins Based on the Standardized Protocol for Liberating N-Glycans *S
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Yoshiaki Miura | Mika Nakano | Masahiro Ohno | M. Nakano | Y. Miura | S. Nishimura | Yasuro Shinohara | Jun-ichi Furukawa | Shin-Ichiro Nishimura | Yoko Kita | Akio Takimoto | J. Furukawa | Y. Shinohara | A. Takimoto | Y. Kita | M. Ohno | Akio Takimoto
[1] Alexandre Louvet,et al. Mass spectrometric approach for screening modifications of total serum N-glycome in human diseases: application to cirrhosis. , 2006, Glycobiology.
[2] H. Kondo,et al. Versatile glycoblotting nanoparticles for high-throughput protein glycomics. , 2005, Chemistry.
[3] T. Veenstra,et al. Characterization of the Low Molecular Weight Human Serum Proteome*S , 2003, Molecular & Cellular Proteomics.
[4] H. Sohn,et al. Identification of target proteins of N‐acetylglucosaminyl‐transferase V and fucosyltransferase 8 in human gastric tissues by glycomic approach , 2004, Proteomics.
[5] E. Petricoin,et al. Use of proteomic patterns in serum to identify ovarian cancer , 2002, The Lancet.
[6] Pauline M Rudd,et al. Altered glycosylation pattern allows the distinction between prostate-specific antigen (PSA) from normal and tumor origins. , 2003, Glycobiology.
[7] I. Shimada,et al. Identification of neutral and sialyl N-linked oligosaccharide structures from human serum glycoproteins using three kinds of high-performance liquid chromatography. , 1995, Analytical biochemistry.
[8] Minoru Fukuda,et al. Carbohydrate structure and differential binding of prostate specific antigen to Maackia amurensis lectin between prostate cancer and benign prostate hypertrophy. , 2004, Glycobiology.
[9] R. Contreras,et al. Noninvasive diagnosis of liver cirrhosis using DNA sequencer–based total serum protein glycomics , 2004, Nature Network Boston.
[10] M. Olczak,et al. Carbohydrate Structures of Haptoglobin in Sera of Healthy People and a Patient with Congenital Disorder of Glycosylation , 2001, Zeitschrift fur Naturforschung. C, Journal of biosciences.
[11] M. Goodarzi,et al. Reproducible and sensitive determination of charged oligosaccharides from haptoglobin by PNGase F digestion and HPAEC/PAD analysis: glycan composition varies with disease , 1998, Glycoconjugate Journal.
[12] S. Nishimura,et al. Simultaneous analysis of 2-aminopyridine-derivatized neutral and sialylated oligosaccharides from human serum in the negative-ion mode by sonic spray ionization ion trap mass spectrometry. , 2005, Analytical chemistry.
[13] J. Bland,et al. Rheumatic disease differentiation using immunoglobulin G sugar printing by high density electrophoresis. , 2003, The Journal of rheumatology.
[14] Y. Miura,et al. Rapid and simple solid-phase esterification of sialic acid residues for quantitative glycomics by mass spectrometry. , 2007, Chemistry.
[15] A. Tarentino,et al. Deglycosylation of asparagine-linked glycans by peptide:N-glycosidase F. , 1985, Biochemistry.
[16] Hiroaki Nakagawa,et al. High Throughput Quantitative Glycomics and Glycoform-focused Proteomics of Murine Dermis and Epidermis* , 2005, Molecular & Cellular Proteomics.
[17] L. Juneja,et al. Occurence of a sialylglycopeptide and free sialylglycans in hen's egg yolk. , 1997, Biochimica et biophysica acta.
[18] N. Takahashi. Demonstration of a new amidase acting on glycopeptides. , 1977, Biochemical and biophysical research communications.
[19] C. Fenselau,et al. Determination of the sialylation pattern of human fibrinogen glycopeptides with fast atom bombardment. , 1984, Biochemistry.
[20] R. Dwek,et al. Sequencing of N-linked oligosaccharides directly from protein gels: in-gel deglycosylation followed by matrix-assisted laser desorption/ionization mass spectrometry and normal-phase high-performance liquid chromatography. , 1997, Analytical biochemistry.
[21] K. Takeshita,et al. Sugar chains of serum transferrin from patients with carbohydrate deficient glycoprotein syndrome. Evidence of asparagine-N-linked oligosaccharide transfer deficiency. , 1993, The Journal of biological chemistry.
[22] R. Dwek,et al. Association of rheumatoid arthritis and primary osteoarthritis with changes in the glycosylation pattern of total serum IgG , 1985, Nature.
[23] A. Kobata,et al. Hydrazinolysis of asparagine-linked sugar chains to produce free oligosaccharides. , 1982, Methods in enzymology.
[24] N. Snowden,et al. Autoantibodies and Specific Serum Proteins in the Diagnosis of Rheumatological Disorders , 1999, Annals of clinical biochemistry.
[25] J. Marth,et al. Unusual N-Glycan Structures in α-Mannosidase II/IIx Double Null Embryos Identified by a Systematic Glycomics Approach Based on Two-dimensional LC Mapping and Matrix-dependent Selective Fragmentation Method in MALDI-TOF/TOF Mass Spectrometry*S , 2006, Molecular & Cellular Proteomics.
[26] J. Gebler,et al. A rapid sample preparation method for mass spectrometric characterization of N-linked glycans. , 2005, Rapid communications in mass spectrometry : RCM.
[27] C. Bertozzi,et al. Glycans in cancer and inflammation — potential for therapeutics and diagnostics , 2005, Nature Reviews Drug Discovery.
[28] K. Schmid,et al. Hydrazinolysis of α1-acid glycoprotein , 1966 .
[29] D. Harvey,et al. Effect of structure on the signal strength of oligosaccharides in matrix-assisted laser desorption/ionization mass spectrometry on time-of-flight and magnetic sector instruments. , 1996, Rapid communications in mass spectrometry : RCM.
[30] Hiroaki Nakagawa,et al. High-throughput protein glycomics: combined use of chemoselective glycoblotting and MALDI-TOF/TOF mass spectrometry. , 2004, Angewandte Chemie.
[31] P. Robbins,et al. Comparative studies on the carbohydrate-containing membrane components of normal and virus-transformed mouse fibroblasts. II. Separation of glycoproteins and glycopeptides by sephadex chromatography. , 1969, Biochemistry.
[32] A. Tarentino,et al. Purification of the oligosaccharide-cleaving enzymes of Flavobacterium meningosepticum. , 1991, Glycobiology.
[33] C. Self,et al. A general method for the complete deglycosylation of a wide variety of serum glycoproteins using peptide-N-glycosidase-F , 1994 .
[34] S. Nishimura,et al. One-pot solid-phase glycoblotting and probing by transoximization for high-throughput glycomics and glycoproteomics. , 2007, Chemistry.
[35] F. Altmann,et al. Kinetic comparison of peptide: N-glycosidases F and A reveals several differences in substrate specificity , 1995, Glycoconjugate Journal.
[36] M. Nakano,et al. Sample clean-up method for analysis of complex-type N-glycans released from glycopeptides. , 2003, Journal of chromatography. A.
[37] Brian L Hood,et al. Biomarkers: Mining the Biofluid Proteome* , 2005, Molecular & Cellular Proteomics.
[38] Martin Gilar,et al. Enzyme-friendly, mass spectrometry-compatible surfactant for in-solution enzymatic digestion of proteins. , 2003, Analytical chemistry.
[39] S. Nishimura,et al. Structural characterization of N-glycopeptides by matrix-dependent selective fragmentation of MALDI-TOF/TOF tandem mass spectrometry. , 2004, Analytical chemistry.
[40] A. Reunanen,et al. Serum immunoglobulins and the risk of rheumatoid arthritis , 1997, Annals of the rheumatic diseases.