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SiBIC: a web server for generating gene set networks based on biclusters obtained by maximal frequent itemset mining.


ABSTRACT: Detecting biclusters from expression data is useful, since biclusters are coexpressed genes under only part of all given experimental conditions. We present a software called SiBIC, which from a given expression dataset, first exhaustively enumerates biclusters, which are then merged into rather independent biclusters, which finally are used to generate gene set networks, in which a gene set assigned to one node has coexpressed genes. We evaluated each step of this procedure: 1) significance of the generated biclusters biologically and statistically, 2) biological quality of merged biclusters, and 3) biological significance of gene set networks. We emphasize that gene set networks, in which nodes are not genes but gene sets, can be more compact than usual gene networks, meaning that gene set networks are more comprehensible. SiBIC is available at http://utrecht.kuicr.kyoto-u.ac.jp:8080/miami/faces/index.jsp.

SUBMITTER: Takahashi K 

PROVIDER: S-EPMC3875427 | biostudies-literature | 2013

REPOSITORIES: biostudies-literature

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SiBIC: a web server for generating gene set networks based on biclusters obtained by maximal frequent itemset mining.

Takahashi Kei-ichiro K   Takigawa Ichigaku I   Mamitsuka Hiroshi H  

PloS one 20131230 12


Detecting biclusters from expression data is useful, since biclusters are coexpressed genes under only part of all given experimental conditions. We present a software called SiBIC, which from a given expression dataset, first exhaustively enumerates biclusters, which are then merged into rather independent biclusters, which finally are used to generate gene set networks, in which a gene set assigned to one node has coexpressed genes. We evaluated each step of this procedure: 1) significance of  ...[more]

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