Department of Neuroscience, College of Medicine, The Ohio State University, Columbus, Ohio, USA.
Stem Cells. 2018 Mar;36(3):392-405. doi: 10.1002/stem.2742. Epub 2017 Nov 27.
In the retina, Müller glia have the potential to become progenitor cells with the ability to proliferate and regenerate neurons. However, the ability of Müller glia-derived progenitor cells (MGPCs) to proliferate and produce neurons is limited in higher vertebrates. Using the chick model system, we investigate how retinoic acid (RA)-signaling influences the proliferation and the formation of MGPCs. We observed an upregulation of cellular RA binding proteins (CRABP) in the Müller glia of damaged retinas where the formation of MGPCs is known to occur. Activation of RA-signaling was stimulated, whereas inhibition suppressed the proliferation of MGPCs in damaged retinas and in fibroblast growth factor 2-treated undamaged retinas. Furthermore, inhibition of RA-degradation stimulated the proliferation of MGPCs. Levels of Pax6, Klf4, and cFos were upregulated in MGPCs by RA agonists and downregulated in MGPCs by RA antagonists. Activation of RA-signaling following MGPC proliferation increased the percentage of progeny that differentiated as neurons. Similarly, the combination of RA and insulin-like growth factor 1 (IGF1) significantly increased neurogenesis from retinal progenitors in the circumferential marginal zone (CMZ). In summary, RA-signaling stimulates the formation of proliferating MGPCs and enhances the neurogenic potential of MGPCs and stem cells in the CMZ. Stem Cells 2018;36:392-405.
在视网膜中,Müller 胶质细胞具有成为祖细胞的潜力,能够增殖和再生神经元。然而,在高等脊椎动物中,Müller 胶质细胞衍生的祖细胞(MGPCs)的增殖和产生神经元的能力是有限的。利用鸡模型系统,我们研究了视黄酸(RA)信号如何影响 MGPCs 的增殖和形成。我们观察到在已知发生 MGPCs 形成的受损视网膜的 Müller 胶质细胞中,细胞 RA 结合蛋白(CRABP)的表达上调。RA 信号的激活被刺激,而抑制则抑制了受损视网膜和碱性成纤维细胞生长因子 2 处理的未受损视网膜中 MGPCs 的增殖。此外,抑制 RA 降解刺激了 MGPCs 的增殖。RA 激动剂上调了 MGPCs 中的 Pax6、Klf4 和 cFos 水平,而 RA 拮抗剂下调了 MGPCs 中的这些水平。MGPC 增殖后 RA 信号的激活增加了分化为神经元的后代的百分比。同样,RA 和胰岛素样生长因子 1(IGF1)的组合显著增加了圆周缘区(CMZ)视网膜祖细胞的神经发生。总之,RA 信号刺激增殖的 MGPCs 的形成,并增强 MGPCs 和 CMZ 中的干细胞的神经发生潜力。Stem Cells 2018;36:392-405.