Woda Juliana M, Pastagia Julie, Mercola Mark, Artinger Kristin Bruk
Department of Cell Biology, Harvard Medical School, Boston, MA 02115, USA.
Development. 2003 Jan;130(2):331-42. doi: 10.1242/dev.00212.
The lateral border of the neural plate is a major source of signals that induce primary neurons, neural crest cells and cranial placodes as well as provide patterning cues to mesodermal structures such as somites and heart. Whereas secreted BMP, FGF and Wnt proteins influence the differentiation of neural and non-neural ectoderm, we show here that members of the Dlx family of transcription factors position the border between neural and non-neural ectoderm and are required for the specification of adjacent cell fates. Inhibition of endogenous Dlx activity in Xenopus embryos with an EnR-Dlx homeodomain fusion protein expands the neural plate into non-neural ectoderm tissue whereas ectopic activation of Dlx target genes inhibits neural plate differentiation. Importantly, the stereotypic pattern of border cell fates in the adjacent ectoderm is re-established only under conditions where the expanded neural plate abuts Dlx-positive non-neural ectoderm. Experiments in which presumptive neural plate was grafted to ventral ectoderm reiterate induction of neural crest and placodal lineages and also demonstrate that Dlx activity is required in non-neural ectoderm for the production of signals needed for induction of these cells. We propose that Dlx proteins regulate intercellular signaling across the interface between neural and non-neural ectoderm that is critical for inducing and patterning adjacent cell fates.
神经板的外侧边界是诱导初级神经元、神经嵴细胞和颅基板的主要信号来源,同时也为中胚层结构(如体节和心脏)提供模式形成线索。虽然分泌的骨形态发生蛋白(BMP)、成纤维细胞生长因子(FGF)和Wnt蛋白影响神经外胚层和非神经外胚层的分化,但我们在此表明,转录因子Dlx家族的成员定位神经外胚层和非神经外胚层之间的边界,并且是相邻细胞命运特化所必需的。用EnR-Dlx同源结构域融合蛋白抑制非洲爪蟾胚胎中的内源性Dlx活性,会使神经板扩展到非神经外胚层组织中,而Dlx靶基因的异位激活则会抑制神经板的分化。重要的是,只有在扩展的神经板与Dlx阳性的非神经外胚层相邻的条件下,相邻外胚层中边界细胞命运的定型模式才能重新建立。将假定的神经板移植到腹侧外胚层的实验重复了神经嵴和基板谱系的诱导,并且还证明非神经外胚层中需要Dlx活性来产生诱导这些细胞所需的信号。我们提出,Dlx蛋白调节神经外胚层和非神经外胚层之间界面的细胞间信号传导,这对于诱导和塑造相邻细胞命运至关重要。