Home LiteratureArticle Details
PMID: 19670906 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't

Peptide separations by on-line MudPIT compared to isoelectric focusing in an off-gel format: application to a membrane-enriched fraction from C2C12 mouse skeletal muscle cells.

Journal of proteome research ·Vol. 8 ·No. 10 ·2009-10-00 ·Pages 4860-9

Elschenbroich S, Ignatchenko V, Sharma P, Schmitt-Ulms G, Gramolini AO, Kislinger T

Abstract

High-resolution peptide separation is pivotal for successful shotgun proteomics. The need for capable techniques propels invention and improvement of ever more sophisticated approaches. Recently, Agilent Technologies has introduced the OFFGEL fractionator, which conducts peptide separation by isoelectric focusing in an off-gel setup. This platform has been shown to accomplish high resolution of peptides for diverse sample types, yielding valuable advantages over comparable separation techniques. In this study, we deliver the first comparison of the newly emerging OFFGEL approach to the well-established on-line MudPIT platform. Samples from a membrane-enriched fraction isolated from murine C2C12 cells were subjected to replicate analysis by OFFGEL (12 fractions, pH 3-10) followed by RP-LC-MS/MS or 12-step on-line MudPIT. OFFGEL analyses yielded 1398 proteins (identified by 10,269 peptides), while 1428 proteins (11,078 peptides) were detected with the MudPIT approach. Thus, our data shows that both platforms produce highly comparable results in terms of protein/peptide identifications and reproducibility for the sample type analyzed. We achieve more accurate peptide focusing after OFFGEL fractionation with 88% of all peptides binned to a single fraction, as compared to 61% of peptides detected in only one step in MudPIT analyses. Our study suggests that both platforms are equally capable of high quality peptide separation of a sample with medium complexity, rendering them comparably valuable for comprehensive proteomic analyses.

MeSH Terms
Animals Cell Line Cell Membrane/chemistry Chromatography, Ion Exchange/methods Humans Isoelectric Focusing/methods Mice Myoblasts/metabolism Peptide Fragments/analysis Proteins/analysis Proteomics/methods Tandem Mass Spectrometry/methods
Chemicals
Peptide Fragments Proteins
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Elschenbroich Sarah
Ontario Cancer Institute, University Health Network, Canada.
Ignatchenko Vladimir
Sharma Parveen
Schmitt-Ulms Gerold
Gramolini Anthony O
Kislinger Thomas
References (54)
54 references, click to expand
  1. A comparison of immobilized pH gradient isoelectric focusing and strong-cation-exchange chromatography as a first dimension in shotgun proteomics.
    Proteomics. 2005 Jan;5(1):24-34 PMID: 15672457
  2. Proteomic analysis of brain plasma membranes isolated by affinity two-phase partitioning.
    Mol Cell Proteomics. 2006 Feb;5(2):390-400 PMID: 16249173
  3. Peptide separation with immobilized pI strips is an attractive alternative to in-gel protein digestion for proteome analysis.
    Proteomics. 2008 Dec;8(23-24):4862-72 PMID: 19003865
  4. Multidimensional separations-based shotgun proteomics.
    Chem Rev. 2007 Aug;107(8):3654-86 PMID: 17649983
  5. Integrated proteomic and transcriptomic profiling of mouse lung development and Nmyc target genes.
    Mol Syst Biol. 2007;3:109 PMID: 17486137
  6. Evaluation of confidence and reproducibility in quantitative proteomics performed by a capillary isoelectric focusing-based proteomic platform coupled with a spectral counting approach.
    Electrophoresis. 2008 Jul;29(14):3047-54 PMID: 18655040
  7. An integrated, directed mass spectrometric approach for in-depth characterization of complex peptide mixtures.
    Mol Cell Proteomics. 2008 Nov;7(11):2138-50 PMID: 18511481
  8. Comparative systems biology of human and mouse as a tool to guide the modeling of human placental pathology.
    Mol Syst Biol. 2009;5:279 PMID: 19536202
  9. Organellar proteomics reveals Golgi arginine dimethylation.
    Mol Biol Cell. 2004 Jun;15(6):2907-19 PMID: 15047867
  10. Proteomics reveal a link between the endoplasmic reticulum and lipid secretory mechanisms in mammary epithelial cells.
    Electrophoresis. 2000 Oct;21(16):3470-82 PMID: 11079566
  11. Proteomics of integral membrane proteins--theory and application.
    Chem Rev. 2007 Aug;107(8):3687-714 PMID: 17683161
  12. Efficient fractionation and improved protein identification by peptide OFFGEL electrophoresis.
    Mol Cell Proteomics. 2006 Oct;5(10):1968-74 PMID: 16849286
  13. An approach to correlate tandem mass spectral data of peptides with amino acid sequences in a protein database.
    J Am Soc Mass Spectrom. 1994 Nov;5(11):976-89 PMID: 24226387
  14. Global survey of organ and organelle protein expression in mouse: combined proteomic and transcriptomic profiling.
    Cell. 2006 Apr 7;125(1):173-86 PMID: 16615898
  15. Automated 2D peptide separation on a 1D nano-LC-MS system.
    J Proteome Res. 2009 Mar;8(3):1610-6 PMID: 19178303
  16. Modeling the isoelectric focusing of peptides in an OFFGEL multicompartment cell.
    J Proteome Res. 2007 May;6(5):1666-76 PMID: 17397209
  17. Identification of pathways associated with invasive behavior by ovarian cancer cells using multidimensional protein identification technology (MudPIT).
    Mol Biosyst. 2008 Jul;4(7):762-73 PMID: 18563251
  18. A mammalian organelle map by protein correlation profiling.
    Cell. 2006 Apr 7;125(1):187-99 PMID: 16615899
  19. Interaction network containing conserved and essential protein complexes in Escherichia coli.
    Nature. 2005 Feb 3;433(7025):531-7 PMID: 15690043
  20. A proteome resource of ovarian cancer ascites: integrated proteomic and bioinformatic analyses to identify putative biomarkers.
    J Proteome Res. 2008 Jan;7(1):339-51 PMID: 18076136
  21. Quantitative mass spectrometric multiple reaction monitoring assays for major plasma proteins.
    Mol Cell Proteomics. 2006 Apr;5(4):573-88 PMID: 16332733
  22. Mass-spectrometric identification and relative quantification of N-linked cell surface glycoproteins.
    Nat Biotechnol. 2009 Apr;27(4):378-86 PMID: 19349973
  23. Multidimensional LC separations in shotgun proteomics.
    Anal Chem. 2008 Oct 1;80(19):7187-93 PMID: 18826178
  24. Large-scale analysis of the yeast proteome by multidimensional protein identification technology.
    Nat Biotechnol. 2001 Mar;19(3):242-7 PMID: 11231557
  25. Global landscape of protein complexes in the yeast Saccharomyces cerevisiae.
    Nature. 2006 Mar 30;440(7084):637-43 PMID: 16554755
  26. A proteomics approach to understanding protein ubiquitination.
    Nat Biotechnol. 2003 Aug;21(8):921-6 PMID: 12872131
  27. Combination of peptide OFFGEL fractionation and label-free quantitation facilitated proteomics profiling of extraocular muscle.
    Proteomics. 2007 Sep;7(18):3404-16 PMID: 17708596
  28. Membrane proteins and membrane proteomics.
    Proteomics. 2008 Oct;8(19):3924-32 PMID: 18763712
  29. Gel based isoelectric focusing of peptides and the utility of isoelectric point in protein identification.
    J Proteome Res. 2004 Jan-Feb;3(1):112-9 PMID: 14998171
  30. Multidimensional peptide separations in proteomics.
    Trends Biotechnol. 2002 Dec;20(12 Suppl):S8-13 PMID: 12570153
  31. Automation of nanoscale microcapillary liquid chromatography-tandem mass spectrometry with a vented column.
    Anal Chem. 2002 Jul 1;74(13):3076-83 PMID: 12141667
  32. Nuclear membrane proteins with potential disease links found by subtractive proteomics.
    Science. 2003 Sep 5;301(5638):1380-2 PMID: 12958361
  33. Evaluation of two cell surface modification methods for proteomic analysis of plasma membrane from isolated mouse hepatocytes.
    Biochim Biophys Acta. 2009 Jan;1794(1):32-41 PMID: 18707032
  34. Limitations of the colloidal silica method in mapping the endothelial plasma membrane proteome of the mouse heart.
    Cell Biochem Biophys. 2009;53(3):135-43 PMID: 19184541
  35. Shotgun proteomic analysis of cerebrospinal fluid using off-gel electrophoresis as the first-dimension separation.
    J Proteome Res. 2008 Oct;7(10):4577-84 PMID: 18778093
  36. Prediction of transmembrane segments in proteins utilising multiple sequence alignments.
    J Mol Biol. 1994 Mar 25;237(2):182-92 PMID: 8126732
  37. Direct analysis of protein complexes using mass spectrometry.
    Nat Biotechnol. 1999 Jul;17(7):676-82 PMID: 10404161
  38. Peptides OFFGEL electrophoresis: a suitable pre-analytical step for complex eukaryotic samples fractionation compatible with quantitative iTRAQ labeling.
    Proteome Sci. 2008 Feb 26;6:9 PMID: 18302743
  39. Global, in vivo, and site-specific phosphorylation dynamics in signaling networks.
    Cell. 2006 Nov 3;127(3):635-48 PMID: 17081983
  40. Sulphonic acid strong cation-exchange restricted access columns in sample cleanup for profiling of endogenous peptides in multidimensional liquid chromatography. Structure and function of strong cation-exchange restricted access materials.
    J Chromatogr A. 2006 Aug 4;1123(1):38-46 PMID: 16750539
  41. A model for random sampling and estimation of relative protein abundance in shotgun proteomics.
    Anal Chem. 2004 Jul 15;76(14):4193-201 PMID: 15253663
  42. The druggable genome.
    Nat Rev Drug Discov. 2002 Sep;1(9):727-30 PMID: 12209152
  43. A method for the comprehensive proteomic analysis of membrane proteins.
    Nat Biotechnol. 2003 May;21(5):532-8 PMID: 12692561
  44. TANDEM: matching proteins with tandem mass spectra.
    Bioinformatics. 2004 Jun 12;20(9):1466-7 PMID: 14976030
  45. Biotinylation reagents for the study of cell surface proteins.
    Proteomics. 2008 Oct;8(19):4012-24 PMID: 18763706
  46. The biological impact of mass-spectrometry-based proteomics.
    Nature. 2007 Dec 13;450(7172):991-1000 PMID: 18075578
  47. Developing multiplexed assays for troponin I and interleukin-33 in plasma by peptide immunoaffinity enrichment and targeted mass spectrometry.
    Clin Chem. 2009 Jun;55(6):1108-17 PMID: 19372185
  48. A practical guide for the identification of membrane and plasma membrane proteins in human embryonic stem cells and human embryonal carcinoma cells.
    Proteomics. 2008 Oct;8(19):4036-53 PMID: 18763709
  49. Direct proteomic mapping of the lung microvascular endothelial cell surface in vivo and in cell culture.
    Nat Biotechnol. 2004 Aug;22(8):985-92 PMID: 15258593
  50. Evaluation of strong cation exchange versus isoelectric focusing of peptides for multidimensional liquid chromatography-tandem mass spectrometry.
    J Proteome Res. 2008 Dec;7(12):5286-94 PMID: 18939861
  51. Toward the complete membrane proteome: high coverage of integral membrane proteins through transmembrane peptide detection.
    Mol Cell Proteomics. 2006 Mar;5(3):444-53 PMID: 16291997
  52. The application of mass spectrometry to membrane proteomics.
    Nat Biotechnol. 2003 Mar;21(3):262-7 PMID: 12610573
  53. Stable isotope labeling by amino acids in cell culture (SILAC) and proteome quantitation of mouse embryonic stem cells to a depth of 5,111 proteins.
    Mol Cell Proteomics. 2008 Apr;7(4):672-83 PMID: 18045802
  54. Plasma membrane proteomics of human embryonic stem cells and human embryonal carcinoma cells.
    J Proteome Res. 2008 Jul;7(7):2936-51 PMID: 18489135
Article Info
Journal
Journal of proteome research
Abbr.
J Proteome Res
ISSN
1535-3907
Published
2009-10-00
Pages
4860-9
Language
English
Region
United States
NLM ID
101128775
PMCID
PMC3712977
Subset
IM
Grants
CIHR · 84267-1 · Canada
CIHR · 87143-1 · Canada
CIHR · MOP-84267 · Canada
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]