State Key Laboratory of Oncogenes and Related Genes, Renji-MedX Stem Cell Research Center, Ren Ji Hospital, School of Biomedical Engineering, Shanghai Jiao Tong University, Shanghai 200030, China.
School of Life Science and Technology, ShanghaiTech University, Shanghai 200031, China.
Stem Cell Reports. 2015 Nov 10;5(5):816-828. doi: 10.1016/j.stemcr.2015.09.019. Epub 2015 Oct 29.
Symmetric and asymmetric divisions are important for self-renewal and differentiation of stem cells during neurogenesis. Although cerebellar granule neurogenesis is controlled by sonic hedgehog (SHH) signaling, whether and how this process is mediated by regulation of cell division modes have not been determined. Here, using time-lapse imaging and cell culture from neuronal progenitor-specific and differentiated neuron-specific reporter mouse lines (Math1-GFP and Dcx-DsRed) and Patched ± mice in which SHH signaling is activated, we find evidence for the existence of symmetric and asymmetric divisions that are closely associated with progenitor proliferation and differentiation. While activation of the SHH pathway enhances symmetric progenitor cell divisions, blockade of the SHH pathway reverses the cell division mode change in Math1-GFP; Dcx-DsRed; Patched ± mice by promoting asymmetric divisions or terminal neuronal symmetric divisions. Thus, cell division mode change mediates the regulation of cerebellar granule neurogenesis controlled by SHH signaling.
对称分裂和不对称分裂对于神经发生过程中干细胞的自我更新和分化很重要。虽然小脑颗粒神经元发生受 sonic hedgehog(SHH)信号的控制,但这个过程是否以及如何通过调节细胞分裂模式来介导尚不清楚。在这里,我们使用神经元祖细胞特异性和分化神经元特异性报告小鼠系(Math1-GFP 和 Dcx-DsRed)和激活 SHH 信号的 patched ± 小鼠的延时成像和细胞培养,发现了与祖细胞增殖和分化密切相关的对称分裂和不对称分裂的存在证据。虽然 SHH 途径的激活增强了对称祖细胞的分裂,但阻断 SHH 途径通过促进不对称分裂或终末神经元对称分裂,改变了 Math1-GFP;Dcx-DsRed;Patched ± 小鼠的细胞分裂模式,从而逆转了这一变化。因此,细胞分裂模式的改变介导了由 SHH 信号控制的小脑颗粒神经元发生的调节。