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Abstract Background ADAR enzymes convert adenosines to inosines within double-stranded RNAs, including microRNA (miRNA) precursors, with important consequences on miRNA retargeting and expression. ADAR2 activity is impaired in glioblastoma and its rescue has anti-tumoral effects. However, how ADAR2 activity may impact the miRNome and the progression of glioblastoma is not known. Results By integrating deep-sequencing and array approaches with bioinformatics analyses and molecular studies, we show that ADAR2 is essential to edit a small number of mature miRNAs and to significantly modulate the expression of about 90 miRNAs in glioblastoma cells. Specifically, the rescue of ADAR2 activity in cancer cells recovers the edited miRNA population lost in glioblastoma cell lines and tissues, and rebalances expression of onco-miRNAs and tumor suppressor miRNAs to the levels observed in normal human brain. We report that the major effect of ADAR2 is to reduce the expression of a large number of miRNAs, most of which act as onco-miRNAs. ADAR2 can edit miR-222/221 and miR-21 precursors and decrease the expression of the corresponding mature onco-miRNAs in vivo and in vitro, with important effects on cell proliferation and migration. Conclusions Our findings disclose an additional layer of complexity in miRNome regulation and provide information to better understand the impact of ADAR2 editing enzyme in glioblastoma. We propose that ADAR2 is a key factor for maintaining edited-miRNA population and balancing the expression of several essential miRNAs involved in cancer.
Behavior and Systematic, 570, Adolescent, Evolution, Adenosine Deaminase, Down-Regulation, RNA-Binding Protein, Models, Biological, Cell Line, Brain Neoplasm, Mice, HEK293 Cell, Models, Cell Movement, Cell Line, Tumor, Genetics, Settore BIO/13 - BIOLOGIA APPLICATA, Animals, Humans, Gene Silencing, double-stranded-RNA; messenger-RNA; human cancer; complex; targets; gliomas; enzyme; mirna; proliferation; astrocytomas, Cell Proliferation, Neoplastic, Tumor, Ecology, Animal, Brain Neoplasms, Research, Gene Expression Profiling, Brain, RNA-Binding Proteins, MicroRNA, Cell Biology, Biological, Gene Expression Regulation, Neoplastic, MicroRNAs, HEK293 Cells, Gene Expression Regulation, microRNA editing, RNA Editing, Glioblastoma, Human
Behavior and Systematic, 570, Adolescent, Evolution, Adenosine Deaminase, Down-Regulation, RNA-Binding Protein, Models, Biological, Cell Line, Brain Neoplasm, Mice, HEK293 Cell, Models, Cell Movement, Cell Line, Tumor, Genetics, Settore BIO/13 - BIOLOGIA APPLICATA, Animals, Humans, Gene Silencing, double-stranded-RNA; messenger-RNA; human cancer; complex; targets; gliomas; enzyme; mirna; proliferation; astrocytomas, Cell Proliferation, Neoplastic, Tumor, Ecology, Animal, Brain Neoplasms, Research, Gene Expression Profiling, Brain, RNA-Binding Proteins, MicroRNA, Cell Biology, Biological, Gene Expression Regulation, Neoplastic, MicroRNAs, HEK293 Cells, Gene Expression Regulation, microRNA editing, RNA Editing, Glioblastoma, Human
citations This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | 137 | |
popularity This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network. | Top 1% | |
influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | Top 10% | |
impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network. | Top 1% |