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Induction of Mesenchymal-Epithelial Transitions in Sarcoma Cells
Published on: April 7, 2017
An intronic microRNA links Rb/E2F and EGFR signaling
Mary Truscott1, Abul B M M K Islam2, James Lightfoot1
1Department of Biochemistry and Molecular Genetics, University of Illinois at Chicago, Chicago, Illinois, United States of America.
Abstract:
The importance of microRNAs in the regulation of various aspects of biology and disease is well recognized. However, what remains largely unappreciated is that a significant number of miRNAs are embedded within and are often co-expressed with protein-coding host genes. Such a configuration raises the possibility of a functional interaction between a miRNA and the gene it resides in. This is exemplified by the Drosophila melanogaster dE2f1 gene that harbors two miRNAs, mir-11 and mir-998, within its last intron. miR-11 was demonstrated to limit the proapoptotic function of dE2F1 by repressing cell death genes that are directly regulated by dE2F1, however the biological role of miR-998 was unknown. Here we show that one of the functions of miR-998 is to suppress dE2F1-dependent cell death specifically in rbf mutants by elevating EGFR signaling. Mechanistically, miR-998 operates by repressing dCbl, a negative regulator of EGFR signaling. Significantly, dCbl is a critical target of miR-998 since dCbl phenocopies the effects of miR-998 on dE2f1-dependent apoptosis in rbf mutants. Importantly, this regulation is conserved, as the miR-998 seed family member miR-29 repressed c-Cbl, and enhanced MAPK activity and wound healing in mammalian cells. Therefore, the two intronic miRNAs embedded in the dE2f1 gene limit the apoptotic function of dE2f1, but operate in different contexts and act through distinct mechanisms. These results also illustrate that examining an intronic miRNA in the context of its host's function can be valuable in elucidating the biological function of the miRNA, and provide new information about the regulation of the host gene itself.
Insights
MicroRNA-998 (miR-998) suppresses cell death by regulating EGFR signaling and targeting dCbl in Drosophila. This intronic microRNA
Area of Science:
- * Molecular Biology
- * Genetics
- * Developmental Biology
Background:
- * MicroRNAs (miRNAs) are key regulators of biological processes and disease.
- * Many miRNAs are embedded within protein-coding genes, suggesting functional interactions.
- * The Drosophila dE2f1 gene contains two intronic miRNAs: miR-11 and miR-998, with miR-998's role being previously unknown.
Purpose of the Study:
- * To elucidate the biological function of miR-998.
- * To investigate the regulatory mechanism of miR-998 in relation to its host gene, dE2f1.
- * To explore the conserved function of miR-998 in mammalian cells.
Main Methods:
- * Genetic analysis in Drosophila melanogaster, specifically in rbf mutants.
- * Investigation of EGFR signaling pathways.
- * Target validation using dCbl repression by miR-998.
- * Comparative analysis in mammalian cells using miR-29.
Main Results:
- * miR-998 suppresses dE2f1-dependent cell death in rbf mutants by enhancing EGFR signaling.
- * miR-998 achieves this by repressing dCbl, a negative regulator of EGFR signaling.
- * The miR-998 homolog, miR-29, represses c-Cbl in mammalian cells, enhancing MAPK activity and wound healing.
Conclusions:
- * The intronic miRNAs miR-11 and miR-998 within the dE2f1 gene regulate dE2f1's apoptotic function through distinct mechanisms and contexts.
- * miR-998 plays a crucial role in suppressing apoptosis by modulating EGFR signaling via dCbl repression.
- * Studying intronic miRNAs within their host gene context is vital for understanding miRNA function and host gene regulation, with conserved mechanisms observed in mammals.
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