Home LiteratureArticle Details
PMID: 24942700 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Accurate proteome-wide label-free quantification by delayed normalization and maximal peptide ratio extraction, termed MaxLFQ.

Molecular & cellular proteomics : MCP ·Vol. 13 ·No. 9 ·2014-09-00 ·Pages 2513-26

Cox J, Hein MY, Luber CA, Paron I, Nagaraj N, Mann M

Abstract

Protein quantification without isotopic labels has been a long-standing interest in the proteomics field. However, accurate and robust proteome-wide quantification with label-free approaches remains a challenge. We developed a new intensity determination and normalization procedure called MaxLFQ that is fully compatible with any peptide or protein separation prior to LC-MS analysis. Protein abundance profiles are assembled using the maximum possible information from MS signals, given that the presence of quantifiable peptides varies from sample to sample. For a benchmark dataset with two proteomes mixed at known ratios, we accurately detected the mixing ratio over the entire protein expression range, with greater precision for abundant proteins. The significance of individual label-free quantifications was obtained via a t test approach. For a second benchmark dataset, we accurately quantify fold changes over several orders of magnitude, a task that is challenging with label-based methods. MaxLFQ is a generic label-free quantification technology that is readily applicable to many biological questions; it is compatible with standard statistical analysis workflows, and it has been validated in many and diverse biological projects. Our algorithms can handle very large experiments of 500+ samples in a manageable computing time. It is implemented in the freely available MaxQuant computational proteomics platform and works completely seamlessly at the click of a button.

MeSH Terms
Algorithms Escherichia coli/metabolism HeLa Cells Humans Peptides/analysis Proteins/analysis Proteome Proteomics/methods Software
Chemicals
Peptides Proteins Proteome
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Cox Jürgen
From the ‡Department of Proteomics and Signal Transduction, Max Planck Institute of Biochemistry, Am Klopferspitz 18, D-82152 Martinsried, Germany cox@biochem.mpg.de mmann@biochem.mpg.de.
Hein Marco Y
From the ‡Department of Proteomics and Signal Transduction, Max Planck Institute of Biochemistry, Am Klopferspitz 18, D-82152 Martinsried, Germany.
Luber Christian A
From the ‡Department of Proteomics and Signal Transduction, Max Planck Institute of Biochemistry, Am Klopferspitz 18, D-82152 Martinsried, Germany.
Paron Igor
From the ‡Department of Proteomics and Signal Transduction, Max Planck Institute of Biochemistry, Am Klopferspitz 18, D-82152 Martinsried, Germany.
Nagaraj Nagarjuna
From the ‡Department of Proteomics and Signal Transduction, Max Planck Institute of Biochemistry, Am Klopferspitz 18, D-82152 Martinsried, Germany.
Mann Matthias
From the ‡Department of Proteomics and Signal Transduction, Max Planck Institute of Biochemistry, Am Klopferspitz 18, D-82152 Martinsried, Germany cox@biochem.mpg.de mmann@biochem.mpg.de.
References (76)
76 references, click to expand
  1. A comparative analysis of computational approaches to relative protein quantification using peptide peak intensities in label-free LC-MS proteomics experiments.
    Proteomics. 2013 Feb;13(3-4):493-503 PMID: 23019139
  2. Tools for label-free peptide quantification.
    Mol Cell Proteomics. 2013 Mar;12(3):549-56 PMID: 23250051
  3. Extensive quantitative remodeling of the proteome between normal colon tissue and adenocarcinoma.
    Mol Syst Biol. 2012;8:611 PMID: 22968445
  4. Comprehensive mass-spectrometry-based proteome quantification of haploid versus diploid yeast.
    Nature. 2008 Oct 30;455(7217):1251-4 PMID: 18820680
  5. A statistical framework for protein quantitation in bottom-up MS-based proteomics.
    Bioinformatics. 2009 Aug 15;25(16):2028-34 PMID: 19535538
  6. Mass spectrometry and protein analysis.
    Science. 2006 Apr 14;312(5771):212-7 PMID: 16614208
  7. DAnTE: a statistical tool for quantitative analysis of -omics data.
    Bioinformatics. 2008 Jul 1;24(13):1556-8 PMID: 18453552
  8. Proteome analysis of erythrocytes lacking AMP-activated protein kinase reveals a role of PAK2 kinase in eryptosis.
    J Proteome Res. 2011 Apr 1;10(4):1690-7 PMID: 21214270
  9. Protein quantification in label-free LC-MS experiments.
    J Proteome Res. 2009 Nov;8(11):5275-84 PMID: 19891509
  10. A suite of algorithms for the comprehensive analysis of complex protein mixtures using high-resolution LC-MS.
    Bioinformatics. 2006 Aug 1;22(15):1902-9 PMID: 16766559
  11. Difference detection in LC-MS data for protein biomarker discovery.
    Bioinformatics. 2007 Jan 15;23(2):e198-204 PMID: 17237092
  12. MapQuant: open-source software for large-scale protein quantification.
    Proteomics. 2006 Mar;6(6):1770-82 PMID: 16470651
  13. SAINT-MS1: protein-protein interaction scoring using label-free intensity data in affinity purification-mass spectrometry experiments.
    J Proteome Res. 2012 Apr 6;11(4):2619-24 PMID: 22352807
  14. An automated pipeline for high-throughput label-free quantitative proteomics.
    J Proteome Res. 2013 Apr 5;12(4):1628-44 PMID: 23391308
  15. Next-generation proteomics: towards an integrative view of proteome dynamics.
    Nat Rev Genet. 2013 Jan;14(1):35-48 PMID: 23207911
  16. Identification of a metabolizing enzyme in human kidney by proteomic correlation profiling.
    Mol Cell Proteomics. 2013 Aug;12(8):2313-23 PMID: 23674616
  17. How much peptide sequence information is contained in ion trap tandem mass spectra?
    J Am Soc Mass Spectrom. 2008 Dec;19(12):1813-20 PMID: 18757209
  18. Hyperplexing: a method for higher-order multiplexed quantitative proteomics provides a map of the dynamic response to rapamycin in yeast.
    Sci Signal. 2012 Mar 27;5(217):rs2 PMID: 22457332
  19. SuperHirn - a novel tool for high resolution LC-MS-based peptide/protein profiling.
    Proteomics. 2007 Oct;7(19):3470-80 PMID: 17726677
  20. Mass spectrometry-based proteomics.
    Nature. 2003 Mar 13;422(6928):198-207 PMID: 12634793
  21. OpenMS - an open-source software framework for mass spectrometry.
    BMC Bioinformatics. 2008 Mar 26;9:163 PMID: 18366760
  22. A platform for accurate mass and time analyses of mass spectrometry data.
    J Proteome Res. 2007 Jul;6(7):2685-94 PMID: 17559252
  23. Quantitative proteomics reveals subset-specific viral recognition in dendritic cells.
    Immunity. 2010 Feb 26;32(2):279-89 PMID: 20171123
  24. Differential expression analysis of Escherichia coli proteins using a novel software for relative quantitation of LC-MS/MS data.
    Proteomics. 2006 Aug;6(16):4475-85 PMID: 16858737
  25. Proteomic analysis of formalin-fixed paraffin-embedded renal tissue samples by label-free MS: assessment of overall technical variability and the impact of block age.
    Proteomics Clin Appl. 2013 Apr;7(3-4):273-82 PMID: 23027403
  26. Computational Proteomics Analysis System (CPAS): an extensible, open-source analytic system for evaluating and publishing proteomic data and high throughput biological experiments.
    J Proteome Res. 2006 Jan;5(1):112-21 PMID: 16396501
  27. Triplex protein quantification based on stable isotope labeling by peptide dimethylation applied to cell and tissue lysates.
    Proteomics. 2008 Nov;8(22):4624-32 PMID: 18850632
  28. Label-free quantitative analysis of the membrane proteome of Bace1 protease knock-out zebrafish brains.
    Proteomics. 2013 May;13(9):1519-27 PMID: 23457027
  29. Mass spectrometry-based proteomics using Q Exactive, a high-performance benchtop quadrupole Orbitrap mass spectrometer.
    Mol Cell Proteomics. 2011 Sep;10(9):M111.011015 PMID: 21642640
  30. MaxQuant enables high peptide identification rates, individualized p.p.b.-range mass accuracies and proteome-wide protein quantification.
    Nat Biotechnol. 2008 Dec;26(12):1367-72 PMID: 19029910
  31. Direct comparison of MS-based label-free and SILAC quantitative proteome profiling strategies in primary retinal Müller cells.
    Proteomics. 2012 Jun;12(12):1902-11 PMID: 22623344
  32. Andromeda: a peptide search engine integrated into the MaxQuant environment.
    J Proteome Res. 2011 Apr 1;10(4):1794-805 PMID: 21254760
  33. Quantification of proteins and metabolites by mass spectrometry without isotopic labeling.
    Methods Mol Biol. 2007;359:87-105 PMID: 17484112
  34. MSight: an image analysis software for liquid chromatography-mass spectrometry.
    Proteomics. 2005 Jun;5(9):2381-4 PMID: 15880814
  35. Comparison of label-free methods for quantifying human proteins by shotgun proteomics.
    Mol Cell Proteomics. 2005 Oct;4(10):1487-502 PMID: 15979981
  36. A map of general and specialized chromatin readers in mouse tissues generated by label-free interaction proteomics.
    Mol Cell. 2013 Jan 24;49(2):368-78 PMID: 23201125
  37. Quantitative mass spectrometry in proteomics: critical review update from 2007 to the present.
    Anal Bioanal Chem. 2012 Sep;404(4):939-65 PMID: 22772140
  38. Proteomic characterization of the human centrosome by protein correlation profiling.
    Nature. 2003 Dec 4;426(6966):570-4 PMID: 14654843
  39. A proteomic characterization of factors enriched at nascent DNA molecules.
    Cell Rep. 2013 Apr 25;3(4):1105-16 PMID: 23545495
  40. Parts per million mass accuracy on an Orbitrap mass spectrometer via lock mass injection into a C-trap.
    Mol Cell Proteomics. 2005 Dec;4(12):2010-21 PMID: 16249172
  41. 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
  42. Shotgun proteomics of archival triple-negative breast cancer samples.
    Proteomics Clin Appl. 2013 Apr;7(3-4):283-91 PMID: 23436753
  43. Molecular fingerprinting of the podocyte reveals novel gene and protein regulatory networks.
    Kidney Int. 2013 Jun;83(6):1052-64 PMID: 23364521
  44. A quantitative analysis software tool for mass spectrometry-based proteomics.
    Nat Methods. 2008 Apr;5(4):319-22 PMID: 18345006
  45. Quantitative proteomics of Trypanosoma cruzi during metacyclogenesis.
    Proteomics. 2012 Aug;12(17):2694-703 PMID: 22761176
  46. Multiplexed protein quantitation in Saccharomyces cerevisiae using amine-reactive isobaric tagging reagents.
    Mol Cell Proteomics. 2004 Dec;3(12):1154-69 PMID: 15385600
  47. Is proteomics the new genomics?
    Cell. 2007 Aug 10;130(3):395-8 PMID: 17693247
  48. Analysis of seminal plasma from patients with non-obstructive azoospermia and identification of candidate biomarkers of male infertility.
    J Proteome Res. 2012 Mar 2;11(3):1503-11 PMID: 22188163
  49. Quantitative analysis of complex protein mixtures using isotope-coded affinity tags.
    Nat Biotechnol. 1999 Oct;17(10):994-9 PMID: 10504701
  50. Analysis of the Plasmodium falciparum proteasome using Blue Native PAGE and label-free quantitative mass spectrometry.
    Amino Acids. 2012 Sep;43(3):1119-29 PMID: 22821270
  51. Proteomics pipeline for biomarker discovery of laser capture microdissected breast cancer tissue.
    J Mammary Gland Biol Neoplasia. 2012 Jun;17(2):155-64 PMID: 22644111
  52. Stable isotope labeling by amino acids in cell culture, SILAC, as a simple and accurate approach to expression proteomics.
    Mol Cell Proteomics. 2002 May;1(5):376-86 PMID: 12118079
  53. An accurate mass tag strategy for quantitative and high-throughput proteome measurements.
    Proteomics. 2002 May;2(5):513-23 PMID: 11987125
  54. Label-free quantitative proteomics of CD133-positive liver cancer stem cells.
    Proteome Sci. 2012 Nov 21;10(1):69 PMID: 23170877
  55. TOPP--the OpenMS proteomics pipeline.
    Bioinformatics. 2007 Jan 15;23(2):e191-7 PMID: 17237091
  56. Absolute protein quantification by LC/MS(E) for global analysis of salicylic acid-induced plant protein secretion responses.
    J Proteome Res. 2009 Jan;8(1):82-93 PMID: 18998720
  57. PEPPeR, a platform for experimental proteomic pattern recognition.
    Mol Cell Proteomics. 2006 Oct;5(10):1927-41 PMID: 16857664
  58. Significance analysis of microarrays applied to the ionizing radiation response.
    Proc Natl Acad Sci U S A. 2001 Apr 24;98(9):5116-21 PMID: 11309499
  59. Mass spectrometry-based proteomics turns quantitative.
    Nat Chem Biol. 2005 Oct;1(5):252-62 PMID: 16408053
  60. Comparative proteomic analysis of eleven common cell lines reveals ubiquitous but varying expression of most proteins.
    Mol Cell Proteomics. 2012 Mar;11(3):M111.014050 PMID: 22278370
  61. Statistical and computational methods for comparative proteomic profiling using liquid chromatography-tandem mass spectrometry.
    Mol Cell Proteomics. 2005 Apr;4(4):419-34 PMID: 15741312
  62. Direct proteomic quantification of the secretome of activated immune cells.
    Science. 2013 Apr 26;340(6131):475-8 PMID: 23620052
  63. Global quantification of mammalian gene expression control.
    Nature. 2011 May 19;473(7347):337-42 PMID: 21593866
  64. ProtQuant: a tool for the label-free quantification of MudPIT proteomics data.
    BMC Bioinformatics. 2007 Nov 01;8 Suppl 7:S24 PMID: 18047724
  65. Exponentially modified protein abundance index (emPAI) for estimation of absolute protein amount in proteomics by the number of sequenced peptides per protein.
    Mol Cell Proteomics. 2005 Sep;4(9):1265-72 PMID: 15958392
  66. Proteomics-based identification of low-abundance signaling and regulatory protein complexes in native plant tissues.
    Nat Protoc. 2012 Dec;7(12):2144-58 PMID: 23196971
  67. Stop and go extraction tips for matrix-assisted laser desorption/ionization, nanoelectrospray, and LC/MS sample pretreatment in proteomics.
    Anal Chem. 2003 Feb 1;75(3):663-70 PMID: 12585499
  68. Quantitative proteomic analysis reveals the neuroprotective effects of huperzine A for amyloid beta treated neuroblastoma N2a cells.
    Proteomics. 2013 Apr;13(8):1314-24 PMID: 23424162
  69. Quantitative proteomics combined with BAC TransgeneOmics reveals in vivo protein interactions.
    J Cell Biol. 2010 May 17;189(4):739-54 PMID: 20479470
  70. The coming age of complete, accurate, and ubiquitous proteomes.
    Mol Cell. 2013 Feb 21;49(4):583-90 PMID: 23438854
  71. MZmine: toolbox for processing and visualization of mass spectrometry based molecular profile data.
    Bioinformatics. 2006 Mar 1;22(5):634-6 PMID: 16403790
  72. Reorganized PKA-AKAP associations in the failing human heart.
    J Mol Cell Cardiol. 2012 Feb;52(2):511-8 PMID: 21712045
  73. An assessment of software solutions for the analysis of mass spectrometry based quantitative proteomics data.
    J Proteome Res. 2008 Jan;7(1):51-61 PMID: 18173218
  74. Ultra high resolution linear ion trap Orbitrap mass spectrometer (Orbitrap Elite) facilitates top down LC MS/MS and versatile peptide fragmentation modes.
    Mol Cell Proteomics. 2012 Mar;11(3):O111.013698 PMID: 22159718
  75. Quantitative mass spectrometry in proteomics: a critical review.
    Anal Bioanal Chem. 2007 Oct;389(4):1017-31 PMID: 17668192
  76. Comparative analysis of different label-free mass spectrometry based protein abundance estimates and their correlation with RNA-Seq gene expression data.
    J Proteome Res. 2012 Apr 6;11(4):2261-71 PMID: 22329341
Article Info
Journal
Molecular & cellular proteomics : MCP
Abbr.
Mol Cell Proteomics
ISSN
1535-9484
Published
2014-09-00
Epub
2014-00-17
Pages
2513-26
Language
English
Region
United States
NLM ID
101125647
PMCID
PMC4159666
Subset
IM
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: product@genelibs.com