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DCGL: an R package for identifying differentially coexpressed genes and links from gene expression microarray data.


ABSTRACT: SUMMARY: Gene coexpression analysis was developed to explore gene interconnection at the expression level from a systems perspective, and differential coexpression analysis (DCEA), which examines the change in gene expression correlation between two conditions, was accordingly designed as a complementary technique to traditional differential expression analysis (DEA). Since there is a shortage of DCEA tools, we implemented in an R package 'DCGL' five DCEA methods for identification of differentially coexpressed genes and differentially coexpressed links, including three currently popular methods and two novel algorithms described in a companion paper. DCGL can serve as an easy-to-use tool to facilitate differential coexpression analyses. CONTACT: yyli@scbit.org and yxli@scbit.org SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online.

SUBMITTER: Liu BH 

PROVIDER: S-EPMC2951087 | biostudies-other | 2010 Oct

REPOSITORIES: biostudies-other

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DCGL: an R package for identifying differentially coexpressed genes and links from gene expression microarray data.

Liu Bao-Hong BH   Yu Hui H   Tu Kang K   Li Chun C   Li Yi-Xue YX   Li Yuan-Yuan YY  

Bioinformatics (Oxford, England) 20100826 20


<h4>Summary</h4>Gene coexpression analysis was developed to explore gene interconnection at the expression level from a systems perspective, and differential coexpression analysis (DCEA), which examines the change in gene expression correlation between two conditions, was accordingly designed as a complementary technique to traditional differential expression analysis (DEA). Since there is a shortage of DCEA tools, we implemented in an R package 'DCGL' five DCEA methods for identification of dif  ...[more]

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