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Filopodia-based Wnt transport during vertebrate tissue patterning

机译:脊椎动物组织模式中基于丝足的Wnt转运。

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Paracrine Wnt/β-catenin signalling is important during developmental processes, tissue regeneration and stem cell regulation. Wnt proteins are morphogens, which form concentration gradients across responsive tissues. Little is known about the transport mechanism for these lipid-modified signalling proteins in vertebrates. Here we show that Wnt8a is transported on actin-based filopodia to contact responding cells and activate signalling during neural plate formation in zebrafish. Cdc42 / N-Wasp regulates the formation of these Wnt-positive filopodia. Enhanced formation of filopodia increases the effective signalling range of Wnt by facilitating spreading. Consistently, reduction in filopodia leads to a restricted distribution of the ligand and a limited signalling range. Using a simulation, we provide evidence that such a short-range transport system for Wnt has a long-range signalling function. Indeed, we show that a filopodia-based transport system for Wnt8a controls anteroposterior patterning of the neural plate during vertebrate gastrulation.
机译:旁分泌Wnt /β-catenin信号在发育过程,组织再生和干细胞调节过程中很重要。 Wnt蛋白是形态发生子,可在反应组织中形成浓度梯度。这些脂质修饰的信号蛋白在脊椎动物中的转运机制知之甚少。在这里,我们显示Wnt8a在基于肌动蛋白的丝状伪足上转运,以接触响应细胞并在斑马鱼的神经板形成过程中激活信号传导。 Cdc42 / N-黄蜂调节这些Wnt阳性丝状伪足的形成。丝状伪足的形成增强通过促进扩散而增加了Wnt的有效信号传导范围。一致地,丝状伪足的减少导致配体的分布受限和信号传导范围受限。通过仿真,我们提供了证据,表明Wnt的这种短距离传输系统具有远距离信令功能。确实,我们显示了Wnt8a的基于丝状伪足的运输系统控制了脊椎动物胃肠形成过程中神经板的前后模式。

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