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PMID: 22037311 Published · epublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Mapping intact protein isoforms in discovery mode using top-down proteomics.

Nature ·Vol. 480 ·No. 7376 ·2011-10-30 ·Pages 254-8

Tran JC, Zamdborg L, Ahlf DR, Lee JE, Catherman AD, Durbin KR, Tipton JD, Vellaichamy A, Kellie JF, Li M, Wu C, Sweet SM, Early BP, Siuti N, LeDuc RD, Compton PD, Thomas PM, Kelleher NL

Abstract

A full description of the human proteome relies on the challenging task of detecting mature and changing forms of protein molecules in the body. Large-scale proteome analysis has routinely involved digesting intact proteins followed by inferred protein identification using mass spectrometry. This 'bottom-up' process affords a high number of identifications (not always unique to a single gene). However, complications arise from incomplete or ambiguous characterization of alternative splice forms, diverse modifications (for example, acetylation and methylation) and endogenous protein cleavages, especially when combinations of these create complex patterns of intact protein isoforms and species. 'Top-down' interrogation of whole proteins can overcome these problems for individual proteins, but has not been achieved on a proteome scale owing to the lack of intact protein fractionation methods that are well integrated with tandem mass spectrometry. Here we show, using a new four-dimensional separation system, identification of 1,043 gene products from human cells that are dispersed into more than 3,000 protein species created by post-translational modification (PTM), RNA splicing and proteolysis. The overall system produced greater than 20-fold increases in both separation power and proteome coverage, enabling the identification of proteins up to 105 kDa and those with up to 11 transmembrane helices. Many previously undetected isoforms of endogenous human proteins were mapped, including changes in multiply modified species in response to accelerated cellular ageing (senescence) induced by DNA damage. Integrated with the latest version of the Swiss-Prot database, the data provide precise correlations to individual genes and proof-of-concept for large-scale interrogation of whole protein molecules. The technology promises to improve the link between proteomics data and complex phenotypes in basic biology and disease research.

MeSH Terms
Alternative Splicing Cell Line Cellular Senescence/genetics DNA Damage Databases, Protein HMGA1a Protein/analysis HMGA1b Protein/analysis HeLa Cells Humans Phenotype Protein Isoforms/analysis,chemistry Protein Processing, Post-Translational Proteolysis Proteome/analysis,chemistry Proteomics/instrumentation,methods
Chemicals
Protein Isoforms Proteome HMGA1b Protein HMGA1a Protein
Authors & Affiliations
18 authors, click to expand affiliations / ORCID
Tran John C
Department of Chemistry and Biochemistry, and the Institute for Genomic Biology, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.
Zamdborg Leonid
Ahlf Dorothy R
Lee Ji Eun
Catherman Adam D
Durbin Kenneth R
Tipton Jeremiah D
Vellaichamy Adaikkalam
Kellie John F
Li Mingxi
Wu Cong
Sweet Steve M M
Early Bryan P
Siuti Nertila
LeDuc Richard D
Compton Philip D
Thomas Paul M
Kelleher Neil L
References (30)
30 references, click to expand
  1. Escape from therapy-induced accelerated cellular senescence in p53-null lung cancer cells and in human lung cancers.
    Cancer Res. 2005 Apr 1;65(7):2795-803 PMID: 15805280
  2. ATM and ATR substrate analysis reveals extensive protein networks responsive to DNA damage.
    Science. 2007 May 25;316(5828):1160-6 PMID: 17525332
  3. Precise characterization of human histones in the H2A gene family by top down mass spectrometry.
    J Proteome Res. 2006 Feb;5(2):248-53 PMID: 16457589
  4. Identification of a </= 600-kb region on human chromosome 1q42.3 inducing cellular senescence.
    Oncogene. 2003 Jan 16;22(2):281-90 PMID: 12527897
  5. Top down mass spectrometry of < 60-kDa proteins from Methanosarcina acetivorans using quadrupole FRMS with automated octopole collisionally activated dissociation.
    Mol Cell Proteomics. 2006 Jan;5(1):14-25 PMID: 16236702
  6. Intact-protein-based high-resolution three-dimensional quantitative analysis system for proteome profiling of biological fluids.
    Mol Cell Proteomics. 2005 May;4(5):618-25 PMID: 15703445
  7. Gel-eluted liquid fraction entrapment electrophoresis: an electrophoretic method for broad molecular weight range proteome separation.
    Anal Chem. 2008 Mar 1;80(5):1568-73 PMID: 18229945
  8. Proteomics. Proteomics ponders prime time.
    Science. 2008 Sep 26;321(5897):1758-61 PMID: 18818332
  9. Finding one's way in proteomics: a protein species nomenclature.
    Chem Cent J. 2009 Sep 09;3:11 PMID: 19740416
  10. Top-down proteomics on a chromatographic time scale using linear ion trap fourier transform hybrid mass spectrometers.
    Anal Chem. 2007 Nov 1;79(21):7984-91 PMID: 17915963
  11. Multiplexed size separation of intact proteins in solution phase for mass spectrometry.
    Anal Chem. 2009 Aug 1;81(15):6201-9 PMID: 19572727
  12. Intact mass detection, interpretation, and visualization to automate Top-Down proteomics on a large scale.
    Proteomics. 2010 Oct;10(20):3589-97 PMID: 20848673
  13. The AT-hook of the chromatin architectural transcription factor high mobility group A1a is arginine-methylated by protein arginine methyltransferase 6.
    J Biol Chem. 2006 Feb 17;281(7):3764-72 PMID: 16293633
  14. Automated proteomics of E. coli via top-down electron-transfer dissociation mass spectrometry.
    Anal Chem. 2008 Mar 1;80(5):1459-67 PMID: 18229893
  15. The chloroplast grana proteome defined by intact mass measurements from liquid chromatography mass spectrometry.
    Mol Cell Proteomics. 2002 Jan;1(1):46-59 PMID: 12096140
  16. During apoptosis of tumor cells HMGA1a protein undergoes methylation: identification of the modification site by mass spectrometry.
    Biochemistry. 2003 Apr 1;42(12):3575-85 PMID: 12653562
  17. Quantitative analysis of intact apolipoproteins in human HDL by top-down differential mass spectrometry.
    Proc Natl Acad Sci U S A. 2010 Apr 27;107(17):7728-33 PMID: 20388904
  18. A novel role for high-mobility group a proteins in cellular senescence and heterochromatin formation.
    Cell. 2006 Aug 11;126(3):503-14 PMID: 16901784
  19. Interpretation of shotgun proteomic data: the protein inference problem.
    Mol Cell Proteomics. 2005 Oct;4(10):1419-40 PMID: 16009968
  20. Evaluation of two-dimensional gel electrophoresis-based proteome analysis technology.
    Proc Natl Acad Sci U S A. 2000 Aug 15;97(17):9390-5 PMID: 10920198
  21. Intact protein separation by chromatographic and/or electrophoretic techniques for top-down proteomics.
    J Chromatogr A. 2011 Dec 9;1218(49):8760-76 PMID: 21689823
  22. Mass spectrometry in high-throughput proteomics: ready for the big time.
    Nat Methods. 2010 Sep;7(9):681-5 PMID: 20805795
  23. Prefractionation techniques in proteome analysis: the mining tools of the third millennium.
    Electrophoresis. 2005 Jan;26(2):297-319 PMID: 15657944
  24. The pros and cons of peptide-centric proteomics.
    Nat Biotechnol. 2010 Jul;28(7):659-64 PMID: 20622832
  25. Precise and parallel characterization of coding polymorphisms, alternative splicing, and modifications in human proteins by mass spectrometry.
    Mol Cell Proteomics. 2005 Jul;4(7):1002-8 PMID: 15863400
  26. A robust two-dimensional separation for top-down tandem mass spectrometry of the low-mass proteome.
    J Am Soc Mass Spectrom. 2009 Dec;20(12):2183-91 PMID: 19747844
  27. Size-sorting combined with improved nanocapillary liquid chromatography-mass spectrometry for identification of intact proteins up to 80 kDa.
    Anal Chem. 2010 Feb 15;82(4):1234-44 PMID: 20073486
  28. Universal sample preparation method for proteome analysis.
    Nat Methods. 2009 May;6(5):359-62 PMID: 19377485
  29. "Proteotyping": population proteomics of human leukocytes using top down mass spectrometry.
    Anal Chem. 2008 Apr 15;80(8):2857-66 PMID: 18351787
  30. Top-down high-resolution mass spectrometry of cardiac myosin binding protein C revealed that truncation alters protein phosphorylation state.
    Proc Natl Acad Sci U S A. 2009 Aug 4;106(31):12658-63 PMID: 19541641
Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2011-10-30
Epub
2011-00-30
Pages
254-8
Language
English
Region
England
NLM ID
0410462
PMCID
PMC3237778
Subset
IM
Grants
NIDA NIH HHS · F30 DA026672 · United States
NIDA NIH HHS · P30 DA018310 · United States
NIDA NIH HHS · P30 DA018310-06 · United States
NIDA NIH HHS · P30DA 018310 · United States
NIGMS NIH HHS · GM 067193-08 · United States
NIGMS NIH HHS · R01 GM067193 · United States
NIGMS NIH HHS · R01 GM067193-08 · United States
NIDA NIH HHS · F30 DA026672-03 · United States
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