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Cysteinyl Peptide Capture for Shotgun Proteomics: Global Assessment of Chemoselective Fractionation

[Image: see text] The complexity of cell and tissue proteomes presents one of the most significant technical challenges in proteomic biomarker discovery. Multidimensional liquid chromatography−tandem mass spectrometry (LC−MS/MS)-based shotgun proteomics can be coupled with selective enrichment of cy...

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Autores principales: Lin, De, Li, Jing, Slebos, Robbert J. C., Liebler, Daniel C.
Formato: Texto
Lenguaje:English
Publicado: American Chemical Society 2010
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2948434/
https://www.ncbi.nlm.nih.gov/pubmed/20731415
http://dx.doi.org/10.1021/pr1007015
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author Lin, De
Li, Jing
Slebos, Robbert J. C.
Liebler, Daniel C.
author_facet Lin, De
Li, Jing
Slebos, Robbert J. C.
Liebler, Daniel C.
author_sort Lin, De
collection PubMed
description [Image: see text] The complexity of cell and tissue proteomes presents one of the most significant technical challenges in proteomic biomarker discovery. Multidimensional liquid chromatography−tandem mass spectrometry (LC−MS/MS)-based shotgun proteomics can be coupled with selective enrichment of cysteinyl peptides (Cys-peptides) to reduce sample complexity and increase proteome coverage. Here we evaluated the impact of Cys-peptide enrichment on global proteomic inventories. We employed a new cleavable thiol-reactive biotinylating probe, N-(2-(2-(2-(2-(3-(1-hydroxy-2-oxo-2-phenylethyl)phenoxy)acetamido)ethoxy)-ethoxy)ethyl)-5-(2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamide (IBB), to capture Cys-peptides after digestion. Treatment of tryptic digests with the IBB reagent followed by streptavidin capture and mild alkaline hydrolysis releases a highly purified population of Cys-peptides with a residual S-carboxymethyl tag. Isoelectric focusing (IEF) followed by LC−MS/MS of Cys-peptides significantly expanded proteome coverage in Saccharomyces cerevisiae (yeast) and in human colon carcinoma RKO cells. IBB-based fractionation enhanced detection of Cys-proteins in direct proportion to their cysteine content. The degree of enrichment typically was 2−8-fold but ranged up to almost 20-fold for a few proteins. Published copy number annotation for the yeast proteome enabled benchmarking of MS/MS spectral count data to yeast protein abundance and revealed selective enrichment of cysteine-rich, lower abundance proteins. Spectral count data further established this relationship in RKO cells. Enhanced detection of low abundance proteins was due to the chemoselectivity of Cys-peptide capture, rather than simplification of the peptide mixture through fractionation.
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spelling pubmed-29484342010-10-01 Cysteinyl Peptide Capture for Shotgun Proteomics: Global Assessment of Chemoselective Fractionation Lin, De Li, Jing Slebos, Robbert J. C. Liebler, Daniel C. J Proteome Res [Image: see text] The complexity of cell and tissue proteomes presents one of the most significant technical challenges in proteomic biomarker discovery. Multidimensional liquid chromatography−tandem mass spectrometry (LC−MS/MS)-based shotgun proteomics can be coupled with selective enrichment of cysteinyl peptides (Cys-peptides) to reduce sample complexity and increase proteome coverage. Here we evaluated the impact of Cys-peptide enrichment on global proteomic inventories. We employed a new cleavable thiol-reactive biotinylating probe, N-(2-(2-(2-(2-(3-(1-hydroxy-2-oxo-2-phenylethyl)phenoxy)acetamido)ethoxy)-ethoxy)ethyl)-5-(2-oxohexahydro-1H-thieno[3,4-d]imidazol-4-yl)pentanamide (IBB), to capture Cys-peptides after digestion. Treatment of tryptic digests with the IBB reagent followed by streptavidin capture and mild alkaline hydrolysis releases a highly purified population of Cys-peptides with a residual S-carboxymethyl tag. Isoelectric focusing (IEF) followed by LC−MS/MS of Cys-peptides significantly expanded proteome coverage in Saccharomyces cerevisiae (yeast) and in human colon carcinoma RKO cells. IBB-based fractionation enhanced detection of Cys-proteins in direct proportion to their cysteine content. The degree of enrichment typically was 2−8-fold but ranged up to almost 20-fold for a few proteins. Published copy number annotation for the yeast proteome enabled benchmarking of MS/MS spectral count data to yeast protein abundance and revealed selective enrichment of cysteine-rich, lower abundance proteins. Spectral count data further established this relationship in RKO cells. Enhanced detection of low abundance proteins was due to the chemoselectivity of Cys-peptide capture, rather than simplification of the peptide mixture through fractionation. American Chemical Society 2010-08-23 2010-10-01 /pmc/articles/PMC2948434/ /pubmed/20731415 http://dx.doi.org/10.1021/pr1007015 Text en Copyright © 2010 American Chemical Society http://pubs.acs.org This is an open-access article distributed under the ACS AuthorChoice Terms & Conditions. Any use of this article, must conform to the terms of that license which are available at http://pubs.acs.org.
spellingShingle Lin, De
Li, Jing
Slebos, Robbert J. C.
Liebler, Daniel C.
Cysteinyl Peptide Capture for Shotgun Proteomics: Global Assessment of Chemoselective Fractionation
title Cysteinyl Peptide Capture for Shotgun Proteomics: Global Assessment of Chemoselective Fractionation
title_full Cysteinyl Peptide Capture for Shotgun Proteomics: Global Assessment of Chemoselective Fractionation
title_fullStr Cysteinyl Peptide Capture for Shotgun Proteomics: Global Assessment of Chemoselective Fractionation
title_full_unstemmed Cysteinyl Peptide Capture for Shotgun Proteomics: Global Assessment of Chemoselective Fractionation
title_short Cysteinyl Peptide Capture for Shotgun Proteomics: Global Assessment of Chemoselective Fractionation
title_sort cysteinyl peptide capture for shotgun proteomics: global assessment of chemoselective fractionation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2948434/
https://www.ncbi.nlm.nih.gov/pubmed/20731415
http://dx.doi.org/10.1021/pr1007015
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