A Practical Guide to Small Protein Discovery and Characterization Using Mass Spectrometry

被引:52
作者
Ahrens, Christian H. [1 ,2 ]
Wade, Joseph T. [3 ,4 ]
Champion, Matthew M. [5 ]
Langer, Julian D. [6 ,7 ]
机构
[1] Agroscope, Method Dev & Analyt, Wadenswil, Switzerland
[2] SIB Swiss Inst Bioinformat, Wadenswil, Switzerland
[3] New York State Dept Hlth, Wadsworth Ctr, Albany, NY 12203 USA
[4] Univ Albany, Sch Publ Hlth, Dept Biomed Sci, Albany, NY 12222 USA
[5] Univ Notre Dame, Dept Chem & Biochem, Notre Dame, IN 46556 USA
[6] Max Planck Inst Biophys, Mass Spectrometry & Prote, Frankfurt, Germany
[7] Max Planck Inst Brain Res, Prote, Frankfurt, Germany
基金
美国国家卫生研究院; 瑞士国家科学基金会;
关键词
proteomics; small protein; sproteins; SEP; microprotein; genome annotation; LC-MS/MS; shotgun proteomics; top-down proteomics; sample preparation; RNA-SEQ; POSTTRANSLATIONAL MODIFICATIONS; PROTEOGENOMIC ANALYSIS; SAMPLE PREPARATION; HIGH-RESOLUTION; PROTEOMIC DATA; IDENTIFICATION; GENOME; BACTERIAL; COVERAGE;
D O I
10.1128/JB.00353-21
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Small proteins of up to similar to 50 amino acids are an abundant class of biomolecules across all domains of life. Yet due to the challenges inherent in their size, they are often missed in genome annotations, and are difficult to identify and characterize using standard experimental approaches. Consequently, we still know few small proteins even in well-studied prokaryotic model organisms. Mass spectrometry (MS) has great potential for the discovery, validation, and functional characterization of small proteins. However, standard MS approaches are poorly suited to the identification of both known and novel small proteins due to limitations at each step of a typical proteomics workflow, i.e., sample preparation, protease digestion, liquid chromatography, MS data acquisition, and data analysis. Here, we outline the major MS-based workflows and bioinformatic pipelines used for small protein discovery and validation. Special emphasis is placed on highlighting the adjustments required to improve detection and data quality for small proteins. We discuss both the unbiased detection of small proteins and the targeted analysis of small proteins of interest. Finally, we provide guidelines to prioritize novel small proteins, and an outlook on methods with particular potential to further improve comprehensive discovery and characterization of small proteins.
引用
收藏
页数:21
相关论文
共 142 条
[1]   Identification of new protein-coding genes with a potential role in the virulence of the plant pathogen Xanthomonas euvesicatoria [J].
Abendroth, Ulrike ;
Adlung, Norman ;
Otto, Andreas ;
Grueneisen, Benjamin ;
Becher, Doerte ;
Bonas, Ulla .
BMC GENOMICS, 2017, 18
[2]   Mass-spectrometric exploration of proteome structure and function [J].
Aebersold, Ruedi ;
Mann, Matthias .
NATURE, 2016, 537 (7620) :347-355
[3]   Protein Fractionation and Enrichment Prior to Proteomics Sample Preparation [J].
Alpert, Andrew J. .
MODERN PROTEOMICS - SAMPLE PREPARATION, ANALYSIS AND PRACTICAL APPLICATIONS, 2016, 919 :23-41
[4]   Evaluation of Three Automated Genome Annotations for Halorhabdus utahensis [J].
Bakke, Peter ;
Carney, Nick ;
DeLoache, Will ;
Gearing, Mary ;
Ingvorsen, Kjeld ;
Lotz, Matt ;
McNair, Jay ;
Penumetcha, Pallavi ;
Simpson, Samantha ;
Voss, Laura ;
Win, Max ;
Heyer, Laurie J. ;
Campbell, A. Malcolm .
PLOS ONE, 2009, 4 (07)
[5]   Optimized Proteomics Workflow for the Detection of Small Proteins [J].
Bartel, Juergen ;
Varadarajan, Adithi R. ;
Sura, Thomas ;
Ahrens, Christian H. ;
Maass, Sandra ;
Becher, Doerte .
JOURNAL OF PROTEOME RESEARCH, 2020, 19 (10) :4004-4018
[6]   Cryo-EM Structure of the TOM Core Complex from Neurospora crassa [J].
Bausewein, Thomas ;
Mills, Deryck J. ;
Langer, Julian D. ;
Nitschke, Beate ;
Nussberger, Stephan ;
Kuehlbrandt, Werner .
CELL, 2017, 170 (04) :693-+
[7]   A Proteomic View of an Important Human Pathogen - Towards the Quantification of the Entire Staphylococcus aureus Proteome [J].
Becher, Doerte ;
Hempel, Kristina ;
Sievers, Susanne ;
Zuehlke, Daniela ;
Pane-Farre, Jan ;
Otto, Andreas ;
Fuchs, Stephan ;
Albrecht, Dirk ;
Bernhardt, Joerg ;
Engelmann, Susanne ;
Voelker, Uwe ;
van Dijl, Jan Maarten ;
Hecker, Michael .
PLOS ONE, 2009, 4 (12)
[8]   N-terminome and proteogenomic analysis of the Methylobacterium extorquens DM4 reference strain for dichloromethane utilization [J].
Bibi-Triki, Sabrina ;
Husson, Gauthier ;
Maucourt, Bruno ;
Vuilleumier, Stephane ;
Carapito, Christine ;
Bringel, Francoise .
JOURNAL OF PROTEOMICS, 2018, 179 :131-139
[9]   Addressing Statistical Biases in Nucleotide-Derived Protein Databases for Proteogenomic Search Strategies [J].
Blakeley, Paul ;
Overton, Ian M. ;
Hubbard, Simon J. .
JOURNAL OF PROTEOME RESEARCH, 2012, 11 (11) :5221-5234
[10]   N-Terminal- oriented Proteogenomics of the Marine Bacterium Roseobacter Denitrificans Och114 using N-Succinimidyloxycarbonylmethyl) tris( 2,4,6trimethoxyphenyl) phosphonium bromide ( TMPP) Labeling and Diagonal Chromatography* [J].
Bland, Celine ;
Hartmann, Erica M. ;
Christie-Oleza, Joseph A. ;
Fernandez, Bernard ;
Armengaud, Jean .
MOLECULAR & CELLULAR PROTEOMICS, 2014, 13 (05) :1369-1381