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'Gene shaving' as a method for identifying distinct sets of genes with similar expression patterns

BACKGROUND: Large gene expression studies, such as those conducted using DNA arrays, often provide millions of different pieces of data. To address the problem of analyzing such data, we describe a statistical method, which we have called 'gene shaving'. The method identifies subsets of ge...

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Detalles Bibliográficos
Autores principales: Hastie, Trevor, Tibshirani, Robert, Eisen, Michael B, Alizadeh, Ash, Levy, Ronald, Staudt, Louis, Chan, Wing C, Botstein, David, Brown, Patrick
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2000
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC15015/
https://www.ncbi.nlm.nih.gov/pubmed/11178228
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author Hastie, Trevor
Tibshirani, Robert
Eisen, Michael B
Alizadeh, Ash
Levy, Ronald
Staudt, Louis
Chan, Wing C
Botstein, David
Brown, Patrick
author_facet Hastie, Trevor
Tibshirani, Robert
Eisen, Michael B
Alizadeh, Ash
Levy, Ronald
Staudt, Louis
Chan, Wing C
Botstein, David
Brown, Patrick
author_sort Hastie, Trevor
collection PubMed
description BACKGROUND: Large gene expression studies, such as those conducted using DNA arrays, often provide millions of different pieces of data. To address the problem of analyzing such data, we describe a statistical method, which we have called 'gene shaving'. The method identifies subsets of genes with coherent expression patterns and large variation across conditions. Gene shaving differs from hierarchical clustering and other widely used methods for analyzing gene expression studies in that genes may belong to more than one cluster, and the clustering may be supervised by an outcome measure. The technique can be 'unsupervised', that is, the genes and samples are treated as unlabeled, or partially or fully supervised by using known properties of the genes or samples to assist in finding meaningful groupings. RESULTS: We illustrate the use of the gene shaving method to analyze gene expression measurements made on samples from patients with diffuse large B-cell lymphoma. The method identifies a small cluster of genes whose expression is highly predictive of survival. CONCLUSIONS: The gene shaving method is a potentially useful tool for exploration of gene expression data and identification of interesting clusters of genes worth further investigation.
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spelling pubmed-150152001-03-07 'Gene shaving' as a method for identifying distinct sets of genes with similar expression patterns Hastie, Trevor Tibshirani, Robert Eisen, Michael B Alizadeh, Ash Levy, Ronald Staudt, Louis Chan, Wing C Botstein, David Brown, Patrick Genome Biol Research BACKGROUND: Large gene expression studies, such as those conducted using DNA arrays, often provide millions of different pieces of data. To address the problem of analyzing such data, we describe a statistical method, which we have called 'gene shaving'. The method identifies subsets of genes with coherent expression patterns and large variation across conditions. Gene shaving differs from hierarchical clustering and other widely used methods for analyzing gene expression studies in that genes may belong to more than one cluster, and the clustering may be supervised by an outcome measure. The technique can be 'unsupervised', that is, the genes and samples are treated as unlabeled, or partially or fully supervised by using known properties of the genes or samples to assist in finding meaningful groupings. RESULTS: We illustrate the use of the gene shaving method to analyze gene expression measurements made on samples from patients with diffuse large B-cell lymphoma. The method identifies a small cluster of genes whose expression is highly predictive of survival. CONCLUSIONS: The gene shaving method is a potentially useful tool for exploration of gene expression data and identification of interesting clusters of genes worth further investigation. BioMed Central 2000 2000-08-04 /pmc/articles/PMC15015/ /pubmed/11178228 Text en Copyright © 2000 GenomeBiology.com
spellingShingle Research
Hastie, Trevor
Tibshirani, Robert
Eisen, Michael B
Alizadeh, Ash
Levy, Ronald
Staudt, Louis
Chan, Wing C
Botstein, David
Brown, Patrick
'Gene shaving' as a method for identifying distinct sets of genes with similar expression patterns
title 'Gene shaving' as a method for identifying distinct sets of genes with similar expression patterns
title_full 'Gene shaving' as a method for identifying distinct sets of genes with similar expression patterns
title_fullStr 'Gene shaving' as a method for identifying distinct sets of genes with similar expression patterns
title_full_unstemmed 'Gene shaving' as a method for identifying distinct sets of genes with similar expression patterns
title_short 'Gene shaving' as a method for identifying distinct sets of genes with similar expression patterns
title_sort 'gene shaving' as a method for identifying distinct sets of genes with similar expression patterns
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC15015/
https://www.ncbi.nlm.nih.gov/pubmed/11178228
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