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MicroRNA-182-5p targets a network of genes involved in DNA repair
Author(s) -
Keerthana Krishnan,
Anita L Steptoe,
Hilary C. Martin,
Shivangi Wani,
Kátia s,
Nicola Waddell,
Mythily Mariasegaram,
Peter T. Simpson,
Sunil R. Lakhani,
Brian Gabrielli,
Alexander V. Vlassov,
Nicole Cloonan,
Sean M. Grimmond
Publication year - 2012
Publication title -
rna
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.037
H-Index - 171
eISSN - 1469-9001
pISSN - 1355-8382
DOI - 10.1261/rna.034926.112
Subject(s) - biology , microrna , gene , carcinogenesis , dna repair , cell cycle , computational biology , oncomir , translation (biology) , competing endogenous rna , genetics , microbiology and biotechnology , rna , messenger rna , long non coding rna
MicroRNAs are noncoding regulators of gene expression, which act by repressing protein translation and/or degrading mRNA. Many have been shown to drive tumorigenesis in cancer, but functional studies to understand their mode of action are typically limited to single-target genes. In this study, we use synthetic biotinylated miRNA to pull down endogenous targets of miR-182-5p. We identified more than 1000 genes as potential targets of miR-182-5p, most of which have a known function in pathways underlying tumor biology. Specifically, functional enrichment analysis identified components of both the DNA damage response pathway and cell cycle to be highly represented in this target cohort. Experimental validation confirmed that miR-182-5p-mediated disruption of the homologous recombination (HR) pathway is a consequence of its ability to target multiple components in that pathway. Although there is a strong enrichment for the cell cycle ontology, we do not see primary proliferative defects as a consequence of miR-182-5p overexpression. We highlight targets that could be responsible for miR-182-5p-mediated disruption of other biological processes attributed in the literature so far. Finally, we show that miR-182-5p is highly expressed in a panel of human breast cancer samples, highlighting its role as a potential oncomir in breast cancer.

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