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首页> 外文期刊>EvoDevo >Strabismus-mediated primary archenteron invagination is uncoupled from Wnt/β-catenin-dependent endoderm cell fate specification in Nematostella vectensis (Anthozoa, Cnidaria): Implications for the evolution of gastrulation
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Strabismus-mediated primary archenteron invagination is uncoupled from Wnt/β-catenin-dependent endoderm cell fate specification in Nematostella vectensis (Anthozoa, Cnidaria): Implications for the evolution of gastrulation

机译:斜视介导的原肠原虫内陷与线虫线虫(Anthozoa,Cnidaria)中Wnt /β-catenin依赖的内胚层细胞命运规格不相关:对胃泌素进化的影响

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Background Gastrulation is a uniquely metazoan character, and its genesis was arguably the key step that enabled the remarkable diversification within this clade. The process of gastrulation involves two tightly coupled events during embryogenesis of most metazoans. Morphogenesis produces a distinct internal epithelial layer in the embryo, and this epithelium becomes segregated as an endoderm/endomesodermal germ layer through the activation of a specific gene regulatory program. The developmental mechanisms that induced archenteron formation and led to the segregation of germ layers during metazoan evolution are unknown. But an increased understanding of development in early diverging taxa at the base of the metazoan tree may provide insights into the origins of these developmental mechanisms. Results In the anthozoan cnidarian Nematostella vectensis, initial archenteron formation begins with bottle cell-induced buckling of the blastula epithelium at the animal pole. Here, we show that bottle cell formation and initial gut invagination in Nematostella requires NvStrabismus (NvStbm), a maternally-expressed core component of the Wnt/Planar Cell Polarity (PCP) pathway. The NvStbm protein is localized to the animal pole of the zygote, remains asymmetrically expressed through the cleavage stages, and becomes restricted to the apical side of invaginating bottle cells at the blastopore. Antisense morpholino-mediated NvStbm-knockdown blocks bottle cell formation and initial archenteron invagination, but it has no effect on Wnt/?-catenin signaling-mediated endoderm cell fate specification. Conversely, selectively blocking Wnt/?-catenin signaling inhibits endoderm cell fate specification but does not affect bottle cell formation and initial archenteron invagination. Conclusions Our results demonstrate that Wnt/PCP-mediated initial archenteron invagination can be uncoupled from Wnt/?-catenin-mediated endoderm cell fate specification in Nematostella, and provides evidence that these two processes could have evolved independently during metazoan evolution. We propose a two-step model for the evolution of an archenteron and the evolution of endodermal germ layer segregation. Asymmetric accumulation and activation of Wnt/PCP components at the animal pole of the last common ancestor to the eumetazoa may have induced the cell shape changes that led to the initial formation of an archenteron. Activation of Wnt/?-catenin signaling at the animal pole may have led to the activation of a gene regulatory network that specified an endodermal cell fate in the archenteron.
机译:背景胃是后生动物独特的特征,其起源可以说是使这一进化枝显着多样化的关键步骤。在大多数后生动物的胚胎发生过程中,胃化过程涉及两个紧密耦合的事件。形态发生在胚胎中产生明显的内部上皮层,并且该上皮通过激活特定的基因调控程序而被分离为内胚层/内胚层胚芽层。在后生动物进化过程中,诱导肠虫形成并导致胚层分离的发育机制尚不清楚。但是,对后生类群基部的早期分类单元的发育的更多了解可能会为这些发育机制的起源提供见解。结果在花小食囊性念珠菌线虫中,最初的肠ent形成始于瓶极细胞诱导的囊杆上皮在动物极的屈曲。在这里,我们显示线虫中的瓶状细胞形成和初始肠道内陷需要NvStrabismus(NvStbm),这是Wnt /平面细胞极性(PCP)途径的母体表达核心成分。 NvStbm蛋白位于合子的动物极,在卵裂的整个过程中不对称表达,并被限制在胚泡中侵入瓶细胞的顶端。反义吗啉代介导的NvStbm敲低阻止了瓶细胞的形成和初始肠杆菌的内陷,但对Wnt /β-catenin信号介导的内胚层细胞命运规格没有影响。相反,选择性阻断Wnt /β-catenin信号传导可抑制内胚层细胞的命运,但不会影响瓶状细胞的形成和原始肠杆菌的内陷。结论我们的研究结果表明,Wnt / PCP介导的原始肠杆菌内陷可以与线虫中Wnt /β-catenin介导的内胚层细胞命运规范分开,并提供证据表明这两个过程可能在后生动物进化过程中独立进化。我们提出了一个两步模型,用于一个原肠虫的进化和内胚层胚芽层分离的进化。 Wnt / PCP组分在最后一个共同祖先的动物极处向不动杆菌的不对称积累和激活可能已经诱导了细胞形状的变化,从而导致了原肠动物的初步形成。 Wnt /β-catenin信号在动物极点的激活可能导致基因调控网络的激活,该基因调控网络决定了原肠动物的内胚层细胞命运。

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