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PUBMED FOR HANDHELDS

Journal Abstract Search


309 related items for PubMed ID: 21917720

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  • 4. Feasibility of large-scale phosphoproteomics with higher energy collisional dissociation fragmentation.
    Nagaraj N, D'Souza RC, Cox J, Olsen JV, Mann M.
    J Proteome Res; 2010 Dec 03; 9(12):6786-94. PubMed ID: 20873877
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  • 5. Combining low- and high-energy tandem mass spectra for optimized peptide quantification with isobaric tags.
    Dayon L, Pasquarello C, Hoogland C, Sanchez JC, Scherl A.
    J Proteomics; 2010 Feb 10; 73(4):769-77. PubMed ID: 19903544
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  • 8. Evaluation of Parameters for Confident Phosphorylation Site Localization Using an Orbitrap Fusion Tribrid Mass Spectrometer.
    Ferries S, Perkins S, Brownridge PJ, Campbell A, Eyers PA, Jones AR, Eyers CE.
    J Proteome Res; 2017 Sep 01; 16(9):3448-3459. PubMed ID: 28741359
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  • 9. Optimized fragmentation conditions for iTRAQ-labeled phosphopeptides.
    Linke D, Hung CW, Cassidy L, Tholey A.
    J Proteome Res; 2013 Jun 07; 12(6):2755-63. PubMed ID: 23668714
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  • 10. Statistical characterization of HCD fragmentation patterns of tryptic peptides on an LTQ Orbitrap Velos mass spectrometer.
    Shao C, Zhang Y, Sun W.
    J Proteomics; 2014 Sep 23; 109():26-37. PubMed ID: 24981973
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  • 11. Improving SRM assay development: a global comparison between triple quadrupole, ion trap, and higher energy CID peptide fragmentation spectra.
    de Graaf EL, Altelaar AF, van Breukelen B, Mohammed S, Heck AJ.
    J Proteome Res; 2011 Sep 02; 10(9):4334-41. PubMed ID: 21726076
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  • 12. Discrimination between peptide O-sulfo- and O-phosphotyrosine residues by negative ion mode electrospray tandem mass spectrometry.
    Edelson-Averbukh M, Shevchenko A, Pipkorn R, Lehmann WD.
    J Am Soc Mass Spectrom; 2011 Dec 02; 22(12):2256-68. PubMed ID: 21952787
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  • 13. Optimization of Search Engines and Postprocessing Approaches to Maximize Peptide and Protein Identification for High-Resolution Mass Data.
    Tu C, Sheng Q, Li J, Ma D, Shen X, Wang X, Shyr Y, Yi Z, Qu J.
    J Proteome Res; 2015 Nov 06; 14(11):4662-73. PubMed ID: 26390080
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  • 14. Comparison of higher energy collisional dissociation and collision-induced dissociation MS/MS sequencing methods for identification of naturally occurring peptides in human urine.
    Pejchinovski M, Klein J, Ramírez-Torres A, Bitsika V, Mermelekas G, Vlahou A, Mullen W, Mischak H, Jankowski V.
    Proteomics Clin Appl; 2015 Jun 06; 9(5-6):531-42. PubMed ID: 25821083
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  • 15. Pinpointing phosphorylation sites: Quantitative filtering and a novel site-specific x-ion fragment.
    Kelstrup CD, Hekmat O, Francavilla C, Olsen JV.
    J Proteome Res; 2011 Jul 01; 10(7):2937-48. PubMed ID: 21526838
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  • 16. Comprehensive lipidome analysis by shotgun lipidomics on a hybrid quadrupole-orbitrap-linear ion trap mass spectrometer.
    Almeida R, Pauling JK, Sokol E, Hannibal-Bach HK, Ejsing CS.
    J Am Soc Mass Spectrom; 2015 Jan 01; 26(1):133-48. PubMed ID: 25391725
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  • 17. Investigating Acquisition Performance on the Orbitrap Fusion When Using Tandem MS/MS/MS Scanning with Isobaric Tags.
    Hughes CS, Spicer V, Krokhin OV, Morin GB.
    J Proteome Res; 2017 May 05; 16(5):1839-1846. PubMed ID: 28418257
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  • 18. Effectiveness of CID, HCD, and ETD with FT MS/MS for degradomic-peptidomic analysis: comparison of peptide identification methods.
    Shen Y, Tolić N, Xie F, Zhao R, Purvine SO, Schepmoes AA, Moore RJ, Anderson GA, Smith RD.
    J Proteome Res; 2011 Sep 02; 10(9):3929-43. PubMed ID: 21678914
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  • 19. An experimental approach to enhance precursor ion fragmentation for metabolite identification studies: application of dual collision cells in an orbital trap.
    Bushee JL, Argikar UA.
    Rapid Commun Mass Spectrom; 2011 May 30; 25(10):1356-62. PubMed ID: 21504000
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  • 20. Quantitative analysis of protein complex constituents and their phosphorylation states on a LTQ-Orbitrap instrument.
    Przybylski C, Jünger MA, Aubertin J, Radvanyi F, Aebersold R, Pflieger D.
    J Proteome Res; 2010 Oct 01; 9(10):5118-32. PubMed ID: 20734990
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