Department of Biochemistry and Cellular Biology, National Institute of Neuroscience, National Center of Neurology and Psychiatry, Tokyo 187-8502, Japan.
Department of Biochemistry and Cellular Biology, National Institute of Neuroscience, National Center of Neurology and Psychiatry, Tokyo 187-8502, Japan,
J Neurosci. 2018 Jan 31;38(5):1277-1294. doi: 10.1523/JNEUROSCI.1545-17.2017. Epub 2018 Jan 9.
Cerebellar granule cell precursors (GCPs) and granule cells (GCs) represent good models to study neuronal development. Here, we report that the transcription factor myeloid ectopic viral integration site 1 homolog (Meis1) plays pivotal roles in the regulation of mouse GC development. We found that Meis1 is expressed in GC lineage cells and astrocytes in the cerebellum during development. Targeted disruption of the Meis1 gene specifically in the GC lineage resulted in smaller cerebella with disorganized lobules. Knock-down/knock-out (KO) experiments for Meis1 and assays showed that Meis1 binds to an upstream sequence of Pax6 to enhance its transcription in GCPs/GCs and also suggested that the Meis1-Pax6 cascade regulates morphology of GCPs/GCs during development. In the conditional KO (cKO) cerebella, many Atoh1-positive GCPs were observed ectopically in the inner external granule layer (EGL) and a similar phenomenon was observed in cultured cerebellar slices treated with a bone morphogenic protein (BMP) inhibitor. Furthermore, expression of Smad proteins and Smad phosphorylation were severely reduced in the cKO cerebella and Meis1-knock-down GCPs cerebella. Reduction of phosphorylated Smad was also observed in cerebellar slices electroporated with a Pax6 knock-down vector. Because it is known that BMP signaling induces Atoh1 degradation in GCPs, these findings suggest that the Meis1-Pax6 pathway increases the expression of Smad proteins to upregulate BMP signaling, leading to degradation of Atoh1 in the inner EGL, which contributes to differentiation from GCPs to GCs. Therefore, this work reveals crucial functions of Meis1 in GC development and gives insights into the general understanding of the molecular machinery underlying neural differentiation from neural progenitors. We report that myeloid ectopic viral integration site 1 homolog (Meis1) plays pivotal roles in the regulation of mouse granule cell (GC) development. Here, we show Meis1 is expressed in GC precursors (GCPs) and GCs during development. Our knock-down and conditional knock-out (cKO) experiments and assays revealed that Meis1 is required for proper cerebellar structure formation and for transcription in GCPs and GCs. The Meis1-Pax6 cascade regulates the morphology of GCs. In the cKO cerebella, Smad proteins and bone morphogenic protein (BMP) signaling are severely reduced and Atoh1-expressing GCPs are ectopically detected in the inner external granule layer. These findings suggest that Meis1 regulates degradation of Atoh1 via BMP signaling, contributing to GC differentiation in the inner EGL, and should provide understanding into GC development.
小脑颗粒细胞前体细胞 (GCPs) 和颗粒细胞 (GCs) 是研究神经元发育的良好模型。在这里,我们报告转录因子髓系异位病毒整合位点 1 同源物 (Meis1) 在调节小鼠 GC 发育中发挥关键作用。我们发现 Meis1 在发育过程中在小脑的 GC 谱系细胞和星形胶质细胞中表达。Meis1 基因在 GC 谱系中的靶向敲除特异性导致小脑体积减小,小叶排列紊乱。Meis1 的敲低/敲除 (KO) 实验和染色质免疫沉淀实验表明,Meis1 结合 Pax6 的上游序列以增强其在 GCPs/GCs 中的转录,并且还表明 Meis1-Pax6 级联调节发育过程中 GCPs/GCs 的形态。在条件性 KO (cKO) 小脑,在外颗粒层 (EGL) 中观察到许多 Atoh1 阳性的 GCPs 异位,在接受骨形态发生蛋白 (BMP) 抑制剂处理的培养小脑切片中也观察到类似现象。此外,cKO 小脑和 Meis1 敲低 GCPs 小脑中的 Smad 蛋白表达和 Smad 磷酸化严重减少。在用电穿孔转染 Pax6 敲低载体的小脑切片中也观察到磷酸化 Smad 的减少。因为已知 BMP 信号诱导 GCPs 中的 Atoh1 降解,这些发现表明 Meis1-Pax6 途径增加 Smad 蛋白的表达以上调 BMP 信号,导致内 EGL 中的 Atoh1 降解,这有助于 GCP 分化为 GC。因此,这项工作揭示了 Meis1 在 GC 发育中的关键作用,并深入了解了神经祖细胞向神经分化的分子机制。我们报告了髓系异位病毒整合位点 1 同源物 (Meis1) 在调节小鼠颗粒细胞 (GC) 发育中的关键作用。在这里,我们表明 Meis1 在发育过程中在 GC 前体细胞 (GCPs) 和 GC 中表达。我们的敲低和条件性敲除 (cKO) 实验和染色质免疫沉淀实验揭示了 Meis1 对于正确的小脑结构形成和 GCPs 和 GC 中的 转录是必需的。Meis1-Pax6 级联调节 GC 的形态。在 cKO 小脑,Smad 蛋白和骨形态发生蛋白 (BMP) 信号严重减少,并且在外颗粒层中异位检测到表达 Atoh1 的 GCPs。这些发现表明 Meis1 通过 BMP 信号调节 Atoh1 的降解,有助于内 EGL 中的 GC 分化,应该有助于理解 GC 发育。