Azuma Noriyuki, Tadokoro Keiko, Asaka Astuko, Yamada Masao, Yamaguchi Yuki, Handa Hiroshi, Matsushima Satsuki, Watanabe Takashi, Kida Yasuyuki, Ogura Toshihiko, Torii Masaaki, Shimamura Kenji, Nakafuku Masato
Department of Ophthalmology, National Center for Child Health and Development, Tokyo 157-8535, Japan.
Hum Mol Genet. 2005 Apr 15;14(8):1059-68. doi: 10.1093/hmg/ddi098. Epub 2005 Mar 9.
The Pax6 gene plays an important role in eye morphogenesis throughout the animal kingdom. The Pax6 gene and its homologue could form ectopic eyes by targeted expression in Drosophila and Xenopus. Thus, this gene is a master gene for the eye morphogenesis at least in these animals. In the early development of the vertebrate eye, Pax6 is required for the instruction of multipotential progenitor cells of the neural retina (NR). Primitive retinal pigment epithelial (RPE) cells are able to switch their phenotype and differentiate into NR under exogenous intervention, including treatment with fibroblast growth factors (FGFs), and surgical removal of endogenous NR. However, the molecular basis of phenotypic switching is still controversial. Here, we show that Pax6 alone is sufficient to induce transdifferentiation of ectopic NR from RPE cells without addition of FGFs or surgical manipulation. Pax6-mediated transdifferentiation can be induced even at later stages of development. Both in vivo and in vitro studies show that the Pax6 lies downstream of FGF signaling, highlighting the central roles of Pax6 in NR transdifferentiation. Our results provide an evidence of retinogenic potential of nearly mature RPE and a cue for new therapeutic approaches to regenerate functional NR in patients with a visual loss.
在整个动物界,Pax6基因在眼睛形态发生过程中发挥着重要作用。Pax6基因及其同源物可通过在果蝇和非洲爪蟾中的靶向表达形成异位眼。因此,至少在这些动物中,该基因是眼睛形态发生的主控基因。在脊椎动物眼睛的早期发育过程中,Pax6是指导神经视网膜(NR)多能祖细胞所必需的。原始视网膜色素上皮(RPE)细胞能够在外源干预下,包括用成纤维细胞生长因子(FGFs)处理以及手术去除内源性NR,转变其表型并分化为NR。然而,表型转换的分子基础仍存在争议。在此,我们表明,无需添加FGFs或进行手术操作,单独的Pax6就足以诱导RPE细胞转分化为异位NR。即使在发育后期,Pax6介导的转分化也可被诱导。体内和体外研究均表明,Pax6位于FGF信号传导的下游,突出了Pax6在NR转分化中的核心作用。我们的结果为近乎成熟的RPE的视网膜生成潜能提供了证据,并为视力丧失患者再生功能性NR的新治疗方法提供了线索。