首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Inaugural Article: Chordin forms a self-organizing morphogen gradient in the extracellular space between ectoderm and mesoderm in the Xenopus embryo
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Inaugural Article: Chordin forms a self-organizing morphogen gradient in the extracellular space between ectoderm and mesoderm in the Xenopus embryo

机译:就职文章:Chordin在非洲爪蟾胚胎的外胚层和中胚层之间的细胞外空间中形成自组织形态发生剂梯度

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摘要

The vertebrate body plan follows stereotypical dorsal–ventral (D-V) tissue differentiation controlled by bone morphogenetic proteins (BMPs) and secreted BMP antagonists, such as Chordin. The three germ layers—ectoderm, mesoderm, and endoderm—are affected coordinately by the Chordin–BMP morphogen system. However, extracellular morphogen gradients of endogenous proteins have not been directly visualized in vertebrate embryos to date. In this study, we improved immunolocalization methods in Xenopus embryos and analyzed the distribution of endogenous Chordin using a specific antibody. Chordin protein secreted by the dorsal Spemann organizer was found to diffuse along a narrow region that separates the ectoderm from the anterior endoderm and mesoderm. This Fibronectin-rich extracellular matrix is called “Brachet’s cleft” in the Xenopus gastrula and is present in all vertebrate embryos. Chordin protein formed a smooth gradient that encircled the embryo, reaching the ventral-most Brachet cleft. Depletion with morpholino oligos showed that this extracellular gradient was regulated by the Chordin protease Tolloid and its inhibitor Sizzled. The Chordin gradient, as well as the BMP signaling gradient, was self-regulating and, importantly, was able to rescale in dorsal half-embryos. Transplantation of Spemann organizer tissue showed that Chordin diffused over long distances along this signaling highway between the ectoderm and mesoderm. Chordin protein must reach very high concentrations in this narrow region. We suggest that as ectoderm and mesoderm undergo morphogenetic movements during gastrulation, cells in both germ layers read their positional information coordinately from a single morphogen gradient located in Brachet’s cleft.
机译:脊椎动物的身体计划遵循由骨形态发生蛋白(BMP)和分泌的BMP拮抗剂(如Chordin)控制的定型背-腹(D-V)组织分化。 Chordin-BMP形态发生系统协同影响三个胚层-外胚层,中胚层和内胚层。然而,迄今为止,尚未在脊椎动物胚胎中直接观察到内源蛋白的细胞外形态发生子梯度。在这项研究中,我们改进了非洲爪蟾胚胎中的免疫定位方法,并使用特异性抗体分析了内源性Chordin的分布。背部Spemann组织者分泌的索丁蛋白沿狭窄区域扩散,该区域将外胚层与前内胚层和中胚层分开。这种富含纤连蛋白的细胞外基质在非洲爪蟾(Xenopus gastrula)中称为“ Brachet裂”,存在于所有脊椎动物胚胎中。索丁蛋白形成环绕胚胎的平滑梯度,到达最腹侧的Brachet裂隙。用吗啉代寡核苷酸耗竭表明,这种细胞外梯度受Chordin蛋白酶Tolloid及其抑制剂Sizzled的调节。 Chordin梯度以及BMP信号梯度是自我调节的,重要的是,它能够在背侧半胚胎中重新定标。 Spemann组织者组织的移植显示,Chordin沿着外胚层和中胚层之间的信号通路漫长地扩散。索丁蛋白必须在此狭窄区域达到很高的浓度。我们建议,在胚芽形成期间外胚层和中胚层进行形态发生运动时,两个胚层中的细胞都从位于Brachet裂隙中的单个形态发生原梯度协调地读取其位置信息。

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