Institute of Human Genetics, University Medical Center of the Johannes Gutenberg University Mainz, Mainz, Germany.
Institute of Developmental Biology and Neurobiology (iDN), Johannes Gutenberg University Mainz, Mainz, Germany.
Commun Biol. 2024 Oct 22;7(1):1366. doi: 10.1038/s42003-024-07092-7.
microRNAs are crucial regulators of brain development, however, miRNA regulatory networks are not sufficiently well characterized. By performing small RNA-seq of the mouse embryonic cortex at E14, E17, and P0 as well as in neural progenitor cells and neurons, here we detected clusters of miRNAs that were co-regulated at distinct developmental stages. miRNAs such as miR-92a/b acted as hubs during early, and miR-124 and miR-137 during late neurogenesis. Notably, validated targets of P0 hub miRNAs were enriched for downregulated genes related to stem cell proliferation, negative regulation of neuronal differentiation and RNA splicing, among others, suggesting that miRNAs are particularly important for modulating transcriptional programs of crucial factors that guide the switch to neuronal differentiation. As most genes contain binding sites for more than one miRNA, we furthermore constructed a co-targeting network where numerous miRNAs shared more targets than expected by chance. Using luciferase reporter assays, we demonstrated that simultaneous binding of miRNA pairs to neurodevelopmentally relevant genes exerted an enhanced transcriptional silencing effect compared to single miRNAs. Taken together, we provide a comprehensive resource of miRNA longitudinal expression changes during murine corticogenesis. Furthermore, we highlight several potential mechanisms through which miRNA regulatory networks can shape embryonic brain development.
microRNAs 是大脑发育的关键调节因子,然而,miRNA 调节网络的特征尚未得到充分描述。通过对 E14、E17 和 P0 的小鼠胚胎皮质以及神经祖细胞和神经元进行小 RNA-seq 分析,我们在此检测到了在不同发育阶段协同调控的 miRNA 簇。miR-92a/b 等 miRNA 在早期起枢纽作用,而 miR-124 和 miR-137 在晚期神经发生中起作用。值得注意的是,P0 枢纽 miRNA 的验证靶标富集了与干细胞增殖、神经元分化和 RNA 剪接的负调控等相关的下调基因,这表明 miRNA 对于调节指导向神经元分化的关键因子的转录程序尤为重要。由于大多数基因都包含一个以上 miRNA 的结合位点,因此我们还构建了一个共靶向网络,其中许多 miRNA 共享的靶标比预期的随机情况要多。通过荧光素酶报告基因检测实验,我们证明了 miRNA 对神经发育相关基因的同时结合比单个 miRNA 产生更强的转录沉默效应。综上所述,我们提供了一个在小鼠皮质发生过程中 miRNA 纵向表达变化的综合资源。此外,我们强调了 miRNA 调节网络可以塑造胚胎大脑发育的几种潜在机制。