首页> 外文期刊>Developmental dynamics: an official publication of the American Association of Anatomists >Blocking Dishevelled signaling in the noncanonical Wnt pathway in sea urchins disrupts endoderm formation and spiculogenesis, but not secondary mesoderm formation.
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Blocking Dishevelled signaling in the noncanonical Wnt pathway in sea urchins disrupts endoderm formation and spiculogenesis, but not secondary mesoderm formation.

机译:阻止海胆中非规范性Wnt途径中杂乱无章的信号传导会破坏内胚层的形成和针状形成,但不会破坏继发的中胚层的形成。

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摘要

Dishevelled (Dsh) is a phosphoprotein key to beta-catenin dependent (canonical) and beta-catenin independent (noncanonical) Wnt signaling. Whereas canonical Wnt signaling has been intensively studied in sea urchin development, little is known about other Wnt pathways. To examine roles of these beta-catenin independent pathways in embryogenesis, we used Dsh-DEP, a deletion construct blocking planar cell polarity (PCP) and Wnt/Ca(2+) signaling. Embryos overexpressing Dsh-DEP failed to gastrulate or undergo skeletogenesis, but produced pigment cells. Although early mesodermal gene expression was largely unperturbed, embryos exhibited reduced expression of genes regulating endoderm specification and differentiation. Overexpressing activated beta-catenin failed to rescue Dsh-DEP embryos, indicating that Dsh-DEP blocks endoderm formation downstream of initial canonical Wnt signaling. Because Dsh-DEP-like constructs block PCP signaling in other metazoans, and disrupting RhoA or Fz 5/8 in echinoids blocks subsets of the Dsh-DEP phenotypes, our data suggest that noncanonical Wnt signaling is crucial for sea urchin endoderm formation and skeletogenesis.
机译:Disheveled(Dsh)是依赖于β-catenin的(经典的)和依赖于β-catenin的(非经典的)Wnt信号的磷蛋白钥匙。尽管在海胆发育中已经对经典的Wnt信号进行了深入研究,但对其他Wnt途径知之甚少。要检查这些β-catenin独立途径在胚胎发生中的作用,我们使用了Dsh-DEP,这是一种缺失构建体,阻止平面细胞极性(PCP)和Wnt / Ca(2+)信号传导。过度表达Dsh-DEP的胚胎未能胃化或发生骨骼生成,但产生了色素细胞。尽管早期中胚层基因表达基本不受干扰,但胚胎表现出调节内胚层规格和分化的基因表达降低。过表达的活化的β-连环蛋白未能挽救Dsh-DEP胚胎,表明Dsh-DEP阻止了初始规范Wnt信号下游的内胚层形成。因为类似Dsh-DEP的构建体会阻断其他子生动物中的PCP信号传导,并且破坏类固醇中的RhoA或Fz 5/8会阻止Dsh-DEP表型的子集,因此我们的数据表明,非经典Wnt信号传导对于海胆内胚层形成和骨骼生成至关重要。

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