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MicroRNAs Establish Robustness and Adaptability of a Critical Gene Network to Regulate Progenitor Fate Decisions during Cortical Neurogenesis

MicroRNAs Establish Robustness and Adaptability of a Critical Gene Network to Regulate Progenitor Fate Decisions during Cortical Neurogenesis
Over the course of cortical neurogenesis, the transition of progenitors from proliferation to differentiation requires a precise regulation of involved gene networks under varying environmental conditions. In order to identify such regulatory mechanisms, we analyzed microRNA (miRNA) target networks in progenitors during early and late stages of neurogenesis. We found that cyclin D1 is a network hub whose expression is miRNA-dosage sensitive. Experimental validation revealed a feedback regulation between cyclin D1 and its regulating miRNAs miR-20a, miR-20b, and miR-23a. Cyclin D1 induces expression of miR-20a and miR-20b, whereas it represses miR-23a. Inhibition of any of these miRNAs increases the developmental stage-specific mean and dynamic expression range (variance) of cyclin D1 protein in progenitors, leading to reduced neuronal differentiation. Thus, miRNAs establish robustness and stage-specific adaptability to a critical dosage-sensitive gene network during cortical neurogenesis. Understanding such network regulatory mechanisms for key developmental events can provide insights into individual susceptibilities for genetically complex neuropsychiatric disorders.
- Inserm France
- Sorbonne University France
- Institut du Fer à Moulin France
- University of Paris France
- French National Centre for Scientific Research France
570, QH301-705.5, Neurogenesis, 610, Mice, Transgenic, Mice, Animals, Humans, Gene Regulatory Networks, BRAIN, Biology (General), [SDV.BC] Life Sciences [q-bio]/Cellular Biology, CYCLIN D1, CANALIZATION, Stem Cells, Cell Differentiation, EXPANSION, DEFECTS, Animals; Cell Differentiation; Humans; Mice; Mice, Transgenic; MicroRNAs; Neurogenesis; Stem Cells; Gene Regulatory Networks; Biochemistry, Genetics and Molecular Biology (all), MOUSE NEOCORTEX, MicroRNAs, CELLS, GENERATION
570, QH301-705.5, Neurogenesis, 610, Mice, Transgenic, Mice, Animals, Humans, Gene Regulatory Networks, BRAIN, Biology (General), [SDV.BC] Life Sciences [q-bio]/Cellular Biology, CYCLIN D1, CANALIZATION, Stem Cells, Cell Differentiation, EXPANSION, DEFECTS, Animals; Cell Differentiation; Humans; Mice; Mice, Transgenic; MicroRNAs; Neurogenesis; Stem Cells; Gene Regulatory Networks; Biochemistry, Genetics and Molecular Biology (all), MOUSE NEOCORTEX, MicroRNAs, CELLS, GENERATION
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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).48 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 10% 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 10% visibility views 109 download downloads 145 - 109views145downloads

