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Integrative analysis to select cancer candidate biomarkers to targeted validation
Targeted proteomics has flourished as the method of choice for prospecting for and validating potential candidate biomarkers in many diseases. However, challenges still remain due to the lack of standardized routines that can prioritize a limited number of proteins to be further validated in human s...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Impact Journals LLC
2015
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4791256/ https://www.ncbi.nlm.nih.gov/pubmed/26540631 |
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author | Kawahara, Rebeca Meirelles, Gabriela V. Heberle, Henry Domingues, Romênia R. Granato, Daniela C. Yokoo, Sami Canevarolo, Rafael R. Winck, Flavia V. Ribeiro, Ana Carolina P. Brandão, Thaís Bianca Filgueiras, Paulo R. Cruz, Karen S. P. Barbuto, José Alexandre Poppi, Ronei J. Minghim, Rosane Telles, Guilherme P. Fonseca, Felipe Paiva Fox, Jay W. Santos-Silva, Alan R. Coletta, Ricardo D. Sherman, Nicholas E. Paes Leme, Adriana F. |
author_facet | Kawahara, Rebeca Meirelles, Gabriela V. Heberle, Henry Domingues, Romênia R. Granato, Daniela C. Yokoo, Sami Canevarolo, Rafael R. Winck, Flavia V. Ribeiro, Ana Carolina P. Brandão, Thaís Bianca Filgueiras, Paulo R. Cruz, Karen S. P. Barbuto, José Alexandre Poppi, Ronei J. Minghim, Rosane Telles, Guilherme P. Fonseca, Felipe Paiva Fox, Jay W. Santos-Silva, Alan R. Coletta, Ricardo D. Sherman, Nicholas E. Paes Leme, Adriana F. |
author_sort | Kawahara, Rebeca |
collection | PubMed |
description | Targeted proteomics has flourished as the method of choice for prospecting for and validating potential candidate biomarkers in many diseases. However, challenges still remain due to the lack of standardized routines that can prioritize a limited number of proteins to be further validated in human samples. To help researchers identify candidate biomarkers that best characterize their samples under study, a well-designed integrative analysis pipeline, comprising MS-based discovery, feature selection methods, clustering techniques, bioinformatic analyses and targeted approaches was performed using discovery-based proteomic data from the secretomes of three classes of human cell lines (carcinoma, melanoma and non-cancerous). Three feature selection algorithms, namely, Beta-binomial, Nearest Shrunken Centroids (NSC), and Support Vector Machine-Recursive Features Elimination (SVM-RFE), indicated a panel of 137 candidate biomarkers for carcinoma and 271 for melanoma, which were differentially abundant between the tumor classes. We further tested the strength of the pipeline in selecting candidate biomarkers by immunoblotting, human tissue microarrays, label-free targeted MS and functional experiments. In conclusion, the proposed integrative analysis was able to pre-qualify and prioritize candidate biomarkers from discovery-based proteomics to targeted MS. |
format | Online Article Text |
id | pubmed-4791256 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2015 |
publisher | Impact Journals LLC |
record_format | MEDLINE/PubMed |
spelling | pubmed-47912562016-03-28 Integrative analysis to select cancer candidate biomarkers to targeted validation Kawahara, Rebeca Meirelles, Gabriela V. Heberle, Henry Domingues, Romênia R. Granato, Daniela C. Yokoo, Sami Canevarolo, Rafael R. Winck, Flavia V. Ribeiro, Ana Carolina P. Brandão, Thaís Bianca Filgueiras, Paulo R. Cruz, Karen S. P. Barbuto, José Alexandre Poppi, Ronei J. Minghim, Rosane Telles, Guilherme P. Fonseca, Felipe Paiva Fox, Jay W. Santos-Silva, Alan R. Coletta, Ricardo D. Sherman, Nicholas E. Paes Leme, Adriana F. Oncotarget Research Paper Targeted proteomics has flourished as the method of choice for prospecting for and validating potential candidate biomarkers in many diseases. However, challenges still remain due to the lack of standardized routines that can prioritize a limited number of proteins to be further validated in human samples. To help researchers identify candidate biomarkers that best characterize their samples under study, a well-designed integrative analysis pipeline, comprising MS-based discovery, feature selection methods, clustering techniques, bioinformatic analyses and targeted approaches was performed using discovery-based proteomic data from the secretomes of three classes of human cell lines (carcinoma, melanoma and non-cancerous). Three feature selection algorithms, namely, Beta-binomial, Nearest Shrunken Centroids (NSC), and Support Vector Machine-Recursive Features Elimination (SVM-RFE), indicated a panel of 137 candidate biomarkers for carcinoma and 271 for melanoma, which were differentially abundant between the tumor classes. We further tested the strength of the pipeline in selecting candidate biomarkers by immunoblotting, human tissue microarrays, label-free targeted MS and functional experiments. In conclusion, the proposed integrative analysis was able to pre-qualify and prioritize candidate biomarkers from discovery-based proteomics to targeted MS. Impact Journals LLC 2015-10-30 /pmc/articles/PMC4791256/ /pubmed/26540631 Text en Copyright: © 2015 Kawahara et al. http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. |
spellingShingle | Research Paper Kawahara, Rebeca Meirelles, Gabriela V. Heberle, Henry Domingues, Romênia R. Granato, Daniela C. Yokoo, Sami Canevarolo, Rafael R. Winck, Flavia V. Ribeiro, Ana Carolina P. Brandão, Thaís Bianca Filgueiras, Paulo R. Cruz, Karen S. P. Barbuto, José Alexandre Poppi, Ronei J. Minghim, Rosane Telles, Guilherme P. Fonseca, Felipe Paiva Fox, Jay W. Santos-Silva, Alan R. Coletta, Ricardo D. Sherman, Nicholas E. Paes Leme, Adriana F. Integrative analysis to select cancer candidate biomarkers to targeted validation |
title | Integrative analysis to select cancer candidate biomarkers to targeted validation |
title_full | Integrative analysis to select cancer candidate biomarkers to targeted validation |
title_fullStr | Integrative analysis to select cancer candidate biomarkers to targeted validation |
title_full_unstemmed | Integrative analysis to select cancer candidate biomarkers to targeted validation |
title_short | Integrative analysis to select cancer candidate biomarkers to targeted validation |
title_sort | integrative analysis to select cancer candidate biomarkers to targeted validation |
topic | Research Paper |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4791256/ https://www.ncbi.nlm.nih.gov/pubmed/26540631 |
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