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FOXP1 Promotes Embryonic Neural Stem Cell Differentiation by Repressing Jagged1 Expression

机译:FOXP1通过抑制Jagged1表达促进胚胎神经干细胞分化

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Summary Mutations in FOXP1 have been linked to neurodevelopmental disorders including intellectual disability and autism; however, the underlying molecular mechanisms remain ill-defined. Here, we demonstrate with RNA and chromatin immunoprecipitation sequencing that FOXP1 directly regulates genes controlling neurogenesis. We show that FOXP1 is expressed in embryonic neural stem cells (NSCs), and modulation of FOXP1 expression affects both neuron and astrocyte differentiation. Using a murine model of cortical development, FOXP1-knockdown in utero was found to reduce NSC differentiation and migration during corticogenesis. Furthermore, transplantation of FOXP1-knockdown NSCs in neonatal mice after hypoxia-ischemia challenge demonstrated that FOXP1 is also required for neuronal differentiation and functionality in?vivo . FOXP1 was found to repress the expression of Notch pathway genes including the Notch-ligand Jagged1, resulting in inhibition of Notch signaling. Finally, blockade of Jagged1 in FOXP1-knockdown NSCs rescued neuronal differentiation in?vitro . Together, these data support a role for FOXP1 in regulating embryonic NSC differentiation by modulating Notch signaling.
机译:总结FOXP1的突变与神经发育障碍有关,包括智力残疾和自闭症。然而,潜在的分子机制仍然不清楚。在这里,我们用RNA和染色质免疫沉淀测序证明FOXP1直接调节控制神经发生的基因。我们表明,FOXP1在胚胎神经干细胞(NSCs)中表达,并且对FOXP1表达的调节会影响神经元和星形胶质细胞的分化。使用皮质发育的小鼠模型,发现子宫内的FOXP1-nockdown可减少皮质发生过程中NSC的分化和迁移。此外,将缺氧缺血性攻击后的FOXP1-nockdown NSCs移植到新生小鼠中,表明FOXP1也是神经元分化和体内功能所必需的。发现FOXP1抑制Notch通路基因(包括Notch-配体Jagged1)的表达,从而抑制Notch信号传导。最后,对FOXP1抑制型NSC中Jagged1的阻断可在体外拯救神经元分化。总之,这些数据通过调节Notch信号支持FOXP1在调节胚胎NSC分化中的作用。

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