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Items: 1 to 20 of 91

1.

Direct mass spectrometric analysis of intact proteins of the yeast large ribosomal subunit using capillary LC/FTICR.

Lee SW, Berger SJ, Martinović S, Pasa-Tolić L, Anderson GA, Shen Y, Zhao R, Smith RD.

Proc Natl Acad Sci U S A. 2002 Apr 30;99(9):5942-7.

4.

High-throughput proteomics using high-efficiency multiple-capillary liquid chromatography with on-line high-performance ESI FTICR mass spectrometry.

Shen Y, Tolić N, Zhao R, Pasa-Tolić L, Li L, Berger SJ, Harkewicz R, Anderson GA, Belov ME, Smith RD.

Anal Chem. 2001 Jul 1;73(13):3011-21.

PMID:
11467548
5.

Characterization of the 70S Ribosome from Rhodopseudomonas palustris using an integrated "top-down" and "bottom-up" mass spectrometric approach.

Strader MB, Verberkmoes NC, Tabb DL, Connelly HM, Barton JW, Bruce BD, Pelletier DA, Davison BH, Hettich RL, Larimer FW, Hurst GB.

J Proteome Res. 2004 Sep-Oct;3(5):965-78.

PMID:
15473684
6.

Mass spectrometry of ribosomes from Saccharomyces cerevisiae: implications for assembly of the stalk complex.

Hanson CL, Videler H, Santos C, Ballesta JP, Robinson CV.

J Biol Chem. 2004 Oct 8;279(41):42750-7. Epub 2004 Aug 3.

7.

Emerging mass spectrometry-based technologies for analyses of chromatin changes: analysis of histones and histone modifications.

Shah B, Kozlowski RL, Han J, Borchers CH.

Methods Mol Biol. 2011;773:259-303. doi: 10.1007/978-1-61779-231-1_16.

PMID:
21898261
8.

Methods in enzymology: O-glycosylation of proteins.

Peter-Katalinić J.

Methods Enzymol. 2005;405:139-71. Review.

PMID:
16413314
10.

Mass spectrometric analysis of histone posttranslational modifications.

Burlingame AL, Zhang X, Chalkley RJ.

Methods. 2005 Aug;36(4):383-94.

PMID:
16112065
11.

FTICR-mass spectrometry for high-resolution analysis in combinatorial chemistry.

Schmid DG, Grosche P, Bandel H, Jung G.

Biotechnol Bioeng. 2000-2001;71(2):149-61.

PMID:
11288069
12.

A novel SET domain methyltransferase modifies ribosomal protein Rpl23ab in yeast.

Porras-Yakushi TR, Whitelegge JP, Miranda TB, Clarke S.

J Biol Chem. 2005 Oct 14;280(41):34590-8. Epub 2005 Aug 11.

13.

An automated high performance capillary liquid chromatography-Fourier transform ion cyclotron resonance mass spectrometer for high-throughput proteomics.

Belov ME, Anderson GA, Wingerd MA, Udseth HR, Tang K, Prior DC, Swanson KR, Buschbach MA, Strittmatter EF, Moore RJ, Smith RD.

J Am Soc Mass Spectrom. 2004 Feb;15(2):212-32.

14.

An integrated top-down and bottom-up strategy for characterization of protein isoforms and modifications.

Wu S, Tolić N, Tian Z, Robinson EW, Paša-Tolić L.

Methods Mol Biol. 2011;694:291-304. doi: 10.1007/978-1-60761-977-2_18.

PMID:
21082441
15.

Making broad proteome protein measurements in 1-5 min using high-speed RPLC separations and high-accuracy mass measurements.

Shen Y, Strittmatter EF, Zhang R, Metz TO, Moore RJ, Li F, Udseth HR, Smith RD, Unger KK, Kumar D, Lubda D.

Anal Chem. 2005 Dec 1;77(23):7763-73.

PMID:
16316187
16.

Dual electrospray ionization source for confident generation of accurate mass tags using liquid chromatography Fourier transform ion cyclotron resonance mass spectrometry.

Nepomuceno AI, Muddiman DC, Bergen HR 3rd, Craighead JR, Burke MJ, Caskey PE, Allan JA.

Anal Chem. 2003 Jul 15;75(14):3411-8.

PMID:
14570191
17.

Analysis of the Arabidopsis cytosolic ribosome proteome provides detailed insights into its components and their post-translational modification.

Carroll AJ, Heazlewood JL, Ito J, Millar AH.

Mol Cell Proteomics. 2008 Feb;7(2):347-69. Epub 2007 Oct 13.

20.

Characterization of a new qQq-FTICR mass spectrometer for post-translational modification analysis and top-down tandem mass spectrometry of whole proteins.

Jebanathirajah JA, Pittman JL, Thomson BA, Budnik BA, Kaur P, Rape M, Kirschner M, Costello CE, O'Connor PB.

J Am Soc Mass Spectrom. 2005 Dec;16(12):1985-99. Epub 2005 Nov 2.

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