Detecting ulcerative colitis from colon samples using efficient feature selection and machine learning

Ulcerative colitis (UC) is one of the most common forms of inflammatory bowel disease (IBD) characterized by inflammation of the mucosal layer of the colon. Diagnosis of UC is based on clinical symptoms, and then confirmed based on endoscopic, histologic and laboratory findings. Feature selection an...

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Published inScientific reports Vol. 10; no. 1; p. 13744
Main Authors Khorasani, Hanieh Marvi, Usefi, Hamid, Peña-Castillo, Lourdes
Format Journal Article
LanguageEnglish
Published London Nature Publishing Group UK 13.08.2020
Nature Publishing Group
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ISSN2045-2322
2045-2322
DOI10.1038/s41598-020-70583-0

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Abstract Ulcerative colitis (UC) is one of the most common forms of inflammatory bowel disease (IBD) characterized by inflammation of the mucosal layer of the colon. Diagnosis of UC is based on clinical symptoms, and then confirmed based on endoscopic, histologic and laboratory findings. Feature selection and machine learning have been previously used for creating models to facilitate the diagnosis of certain diseases. In this work, we used a recently developed feature selection algorithm (DRPT) combined with a support vector machine (SVM) classifier to generate a model to discriminate between healthy subjects and subjects with UC based on the expression values of 32 genes in colon samples. We validated our model with an independent gene expression dataset of colonic samples from subjects in active and inactive periods of UC. Our model perfectly detected all active cases and had an average precision of 0.62 in the inactive cases. Compared with results reported in previous studies and a model generated by a recently published software for biomarker discovery using machine learning (BioDiscML), our final model for detecting UC shows better performance in terms of average precision.
AbstractList Ulcerative colitis (UC) is one of the most common forms of inflammatory bowel disease (IBD) characterized by inflammation of the mucosal layer of the colon. Diagnosis of UC is based on clinical symptoms, and then confirmed based on endoscopic, histologic and laboratory findings. Feature selection and machine learning have been previously used for creating models to facilitate the diagnosis of certain diseases. In this work, we used a recently developed feature selection algorithm (DRPT) combined with a support vector machine (SVM) classifier to generate a model to discriminate between healthy subjects and subjects with UC based on the expression values of 32 genes in colon samples. We validated our model with an independent gene expression dataset of colonic samples from subjects in active and inactive periods of UC. Our model perfectly detected all active cases and had an average precision of 0.62 in the inactive cases. Compared with results reported in previous studies and a model generated by a recently published software for biomarker discovery using machine learning (BioDiscML), our final model for detecting UC shows better performance in terms of average precision.Ulcerative colitis (UC) is one of the most common forms of inflammatory bowel disease (IBD) characterized by inflammation of the mucosal layer of the colon. Diagnosis of UC is based on clinical symptoms, and then confirmed based on endoscopic, histologic and laboratory findings. Feature selection and machine learning have been previously used for creating models to facilitate the diagnosis of certain diseases. In this work, we used a recently developed feature selection algorithm (DRPT) combined with a support vector machine (SVM) classifier to generate a model to discriminate between healthy subjects and subjects with UC based on the expression values of 32 genes in colon samples. We validated our model with an independent gene expression dataset of colonic samples from subjects in active and inactive periods of UC. Our model perfectly detected all active cases and had an average precision of 0.62 in the inactive cases. Compared with results reported in previous studies and a model generated by a recently published software for biomarker discovery using machine learning (BioDiscML), our final model for detecting UC shows better performance in terms of average precision.
Ulcerative colitis (UC) is one of the most common forms of inflammatory bowel disease (IBD) characterized by inflammation of the mucosal layer of the colon. Diagnosis of UC is based on clinical symptoms, and then confirmed based on endoscopic, histologic and laboratory findings. Feature selection and machine learning have been previously used for creating models to facilitate the diagnosis of certain diseases. In this work, we used a recently developed feature selection algorithm (DRPT) combined with a support vector machine (SVM) classifier to generate a model to discriminate between healthy subjects and subjects with UC based on the expression values of 32 genes in colon samples. We validated our model with an independent gene expression dataset of colonic samples from subjects in active and inactive periods of UC. Our model perfectly detected all active cases and had an average precision of 0.62 in the inactive cases. Compared with results reported in previous studies and a model generated by a recently published software for biomarker discovery using machine learning (BioDiscML), our final model for detecting UC shows better performance in terms of average precision.
ArticleNumber 13744
Author Peña-Castillo, Lourdes
Khorasani, Hanieh Marvi
Usefi, Hamid
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  fullname: Khorasani, Hanieh Marvi
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  givenname: Hamid
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Snippet Ulcerative colitis (UC) is one of the most common forms of inflammatory bowel disease (IBD) characterized by inflammation of the mucosal layer of the colon....
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proquest
pubmed
crossref
springer
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StartPage 13744
SubjectTerms 631/114
631/114/1305
631/114/2407
631/114/2413
692/699/1503/257
Colitis, Ulcerative - pathology
Colon
Colon - pathology
Diagnosis
Endoscopy - methods
Feature selection
Gene expression
Gene Expression - physiology
Humanities and Social Sciences
Humans
Inflammation - pathology
Inflammatory bowel disease
Inflammatory bowel diseases
Inflammatory Bowel Diseases - pathology
Intestinal Mucosa - pathology
Intestine
Learning algorithms
Machine Learning
Mucosa
multidisciplinary
Science
Science (multidisciplinary)
Ulcerative colitis
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Title Detecting ulcerative colitis from colon samples using efficient feature selection and machine learning
URI https://link.springer.com/article/10.1038/s41598-020-70583-0
https://www.ncbi.nlm.nih.gov/pubmed/32792678
https://www.proquest.com/docview/2433603159
https://www.proquest.com/docview/2434485476
https://pubmed.ncbi.nlm.nih.gov/PMC7426912
Volume 10
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