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The Use of Urine Proteomic and Metabonomic Patterns for the Diagnosis of Interstitial Cystitis and Bacterial Cystitis
The advent of systems biology approaches that have stemmed from the sequencing of the human genome has led to the search for new methods to diagnose diseases. While much effort has been focused on the identification of disease-specific biomarkers, recent efforts are underway toward the use of proteo...
Autores principales: | , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
IOS Press
2004
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3850593/ https://www.ncbi.nlm.nih.gov/pubmed/15258332 http://dx.doi.org/10.1155/2004/530647 |
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author | Van, Que N. Klose, John R. Lucas, David A. Prieto, DaRue A. Luke, Brian Collins, Jack Burt, Stanley K. Chmurny, Gwendolyn N. Issaq, Haleem J. Conrads, Thomas P. Veenstra, Timothy D. Keay, Susan K. |
author_facet | Van, Que N. Klose, John R. Lucas, David A. Prieto, DaRue A. Luke, Brian Collins, Jack Burt, Stanley K. Chmurny, Gwendolyn N. Issaq, Haleem J. Conrads, Thomas P. Veenstra, Timothy D. Keay, Susan K. |
author_sort | Van, Que N. |
collection | PubMed |
description | The advent of systems biology approaches that have stemmed from the sequencing of the human genome has led to the search for new methods to diagnose diseases. While much effort has been focused on the identification of disease-specific biomarkers, recent efforts are underway toward the use of proteomic and metabonomic patterns to indicate disease. We have developed and contrasted the use of both proteomic and metabonomic patterns in urine for the detection of interstitial cystitis (IC). The methodology relies on advanced bioinformatics to scrutinize information contained within mass spectrometry (MS) and high-resolution proton nuclear magnetic resonance ((1)H-NMR) spectral patterns to distinguish IC-affected from non-affected individuals as well as those suffering from bacterial cystitis (BC). We have applied a novel pattern recognition tool that employs an unsupervised system (self-organizing-type cluster mapping) as a fitness test for a supervised system (a genetic algorithm). With this approach, a training set comprised of mass spectra and (1)H-NMR spectra from urine derived from either unaffected individuals or patients with IC is employed so that the most fit combination of relative, normalized intensity features defined at precise m/z or chemical shift values plotted in n-space can reliably distinguish the cohorts used in training. Using this bioinformatic approach, we were able to discriminate spectral patterns associated with IC-affected, BC-affected, and unaffected patients with a success rate of approximately 84%. |
format | Online Article Text |
id | pubmed-3850593 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2004 |
publisher | IOS Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-38505932013-12-17 The Use of Urine Proteomic and Metabonomic Patterns for the Diagnosis of Interstitial Cystitis and Bacterial Cystitis Van, Que N. Klose, John R. Lucas, David A. Prieto, DaRue A. Luke, Brian Collins, Jack Burt, Stanley K. Chmurny, Gwendolyn N. Issaq, Haleem J. Conrads, Thomas P. Veenstra, Timothy D. Keay, Susan K. Dis Markers Other The advent of systems biology approaches that have stemmed from the sequencing of the human genome has led to the search for new methods to diagnose diseases. While much effort has been focused on the identification of disease-specific biomarkers, recent efforts are underway toward the use of proteomic and metabonomic patterns to indicate disease. We have developed and contrasted the use of both proteomic and metabonomic patterns in urine for the detection of interstitial cystitis (IC). The methodology relies on advanced bioinformatics to scrutinize information contained within mass spectrometry (MS) and high-resolution proton nuclear magnetic resonance ((1)H-NMR) spectral patterns to distinguish IC-affected from non-affected individuals as well as those suffering from bacterial cystitis (BC). We have applied a novel pattern recognition tool that employs an unsupervised system (self-organizing-type cluster mapping) as a fitness test for a supervised system (a genetic algorithm). With this approach, a training set comprised of mass spectra and (1)H-NMR spectra from urine derived from either unaffected individuals or patients with IC is employed so that the most fit combination of relative, normalized intensity features defined at precise m/z or chemical shift values plotted in n-space can reliably distinguish the cohorts used in training. Using this bioinformatic approach, we were able to discriminate spectral patterns associated with IC-affected, BC-affected, and unaffected patients with a success rate of approximately 84%. IOS Press 2004 2004-07-14 /pmc/articles/PMC3850593/ /pubmed/15258332 http://dx.doi.org/10.1155/2004/530647 Text en Copyright © 2004 Hindawi Publishing Corporation. |
spellingShingle | Other Van, Que N. Klose, John R. Lucas, David A. Prieto, DaRue A. Luke, Brian Collins, Jack Burt, Stanley K. Chmurny, Gwendolyn N. Issaq, Haleem J. Conrads, Thomas P. Veenstra, Timothy D. Keay, Susan K. The Use of Urine Proteomic and Metabonomic Patterns for the Diagnosis of Interstitial Cystitis and Bacterial Cystitis |
title | The Use of Urine Proteomic and Metabonomic Patterns for the Diagnosis of Interstitial Cystitis and Bacterial Cystitis |
title_full | The Use of Urine Proteomic and Metabonomic Patterns for the Diagnosis of Interstitial Cystitis and Bacterial Cystitis |
title_fullStr | The Use of Urine Proteomic and Metabonomic Patterns for the Diagnosis of Interstitial Cystitis and Bacterial Cystitis |
title_full_unstemmed | The Use of Urine Proteomic and Metabonomic Patterns for the Diagnosis of Interstitial Cystitis and Bacterial Cystitis |
title_short | The Use of Urine Proteomic and Metabonomic Patterns for the Diagnosis of Interstitial Cystitis and Bacterial Cystitis |
title_sort | use of urine proteomic and metabonomic patterns for the diagnosis of interstitial cystitis and bacterial cystitis |
topic | Other |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3850593/ https://www.ncbi.nlm.nih.gov/pubmed/15258332 http://dx.doi.org/10.1155/2004/530647 |
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