Laboratory of Biological Science, Division of Natural Science, Graduate School of Science, Nagoya University, Nagoya 464-8602, Japan.
Laboratory of Bioresources, National Institute for Basic Biology, Okazaki 444-8585, Japan.
Development. 2023 Oct 1;150(19). doi: 10.1242/dev.202114. Epub 2023 Oct 12.
Neural crest cells generate numerous derivatives, including pigment cells, and are a model for studying how fate specification from multipotent progenitors is controlled. In mammals, the core gene regulatory network for melanocytes (their only pigment cell type) contains three transcription factors, Sox10, Pax3 and Mitf, with the latter considered a master regulator of melanocyte development. In teleosts, which have three to four pigment cell types (melanophores, iridophores and xanthophores, plus leucophores e.g. in medaka), gene regulatory networks governing fate specification are poorly understood, although Mitf function is considered conserved. Here, we show that the regulatory relationships between Sox10, Pax3 and Mitf are conserved in zebrafish, but the role for Mitf is more complex than previously emphasized, affecting xanthophore development too. Similarly, medaka Mitf is necessary for melanophore, xanthophore and leucophore formation. Furthermore, expression patterns and mutant phenotypes of pax3 and pax7 suggest that Pax3 and Pax7 act sequentially, activating mitf expression. Pax7 modulates Mitf function, driving co-expressing cells to differentiate as xanthophores and leucophores rather than melanophores. We propose that pigment cell fate specification should be considered to result from the combinatorial activity of Mitf with other transcription factors.
神经嵴细胞产生众多衍生物,包括色素细胞,是研究多能祖细胞如何控制命运特化的模型。在哺乳动物中,黑素细胞(其唯一的色素细胞类型)的核心基因调控网络包含三个转录因子,Sox10、Pax3 和 Mitf,后者被认为是黑素细胞发育的主调控因子。在鱼类中,有三种到四种色素细胞类型(黑素细胞、虹彩细胞和黄色素细胞,加上白色素细胞,例如在 medaka 中),调控命运特化的基因调控网络知之甚少,尽管 Mitf 功能被认为是保守的。在这里,我们表明 Sox10、Pax3 和 Mitf 之间的调控关系在斑马鱼中是保守的,但 Mitf 的作用比以前强调的更为复杂,也影响黄色素细胞的发育。同样,medaka Mitf 对于黑素细胞、黄色素细胞和白色素细胞的形成是必需的。此外,pax3 和 pax7 的表达模式和突变表型表明 Pax3 和 Pax7 依次作用,激活 mitf 表达。Pax7 调节 Mitf 功能,促使共表达细胞分化为黄色素细胞和白色素细胞,而不是黑素细胞。我们提出,色素细胞命运特化应该被认为是由 Mitf 与其他转录因子的组合活性所导致的。