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A role for actomyosin contractility in Notch signaling

机译:在陷波信号传导中的肌动酶收缩性的作用

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Notch-Delta signaling functions across a wide array of animal systems to break symmetry in a sheet of undifferentiated cells and generate cells with different fates, a process known as lateral inhibition. Unlike many other signaling systems, however, since both the ligand and receptor are transmembrane proteins, the activation of Notch by Delta depends strictly on cell-cell contact. Furthermore, the binding of the ligand to the receptor may not be sufficient to induce signaling, since recent work in cell culture suggests that ligand-induced Notch signaling also requires a mechanical pulling force. This tension exposes a cleavage site in Notch that, when cut, activates signaling. Although it is not known if mechanical tension contributes to signaling in vivo, others have suggested that this is how endocytosis of the receptor-ligand complex contributes to the cleavage and activation of Notch. In a similar way, since Notch-mediated lateral inhibition at a distance in the dorsal thorax of the pupal fly is mediated via actin-rich protrusions, it is possible that cytoskeletal forces generated by networks of filamentous actin and non-muscle myosin during cycles of protrusion extension and retraction also contribute to Notch signaling. To test this hypothesis, we carried out a detailed analysis of the role of myosin II-dependent tension in Notch signaling in the developing fly and in cell culture. Using dynamic fluorescence-based reporters of Notch, we found that myosin II is important for signaling in signal sending and receiving cells in both systems-as expected if myosin II-dependent tension across the Notch-Delta complex contributes to Notch activation. While myosin II was found to contribute most to signaling at a distance, it was also required for maximal signaling between adjacent cells that share lateral contacts and for signaling between cells in culture. Together these results reveal a previously unappreciated role for non-muscle myosin II contractility in Notch signaling, providing further support for the idea that force contributes to the cleavage and activation of Notch in the context of ligand-dependent signaling, and a new paradigm for actomyosin-based mechanosensation.
机译:Notch-Delta信号传递跨越各种动物系统的功能,以破坏未分化的细胞的对称性,并产生具有不同释放的细胞,称为横向抑制的方法。然而,与许多其他信号系统不同,因为配体和受体都是跨膜蛋白,δ通过δ激活δ严密地取决于细胞 - 细胞接触。此外,配体与受体的结合可能不足以诱导信号传导,因为细胞培养的最近工作表明配体诱导的陷波信号也需要机械拉力。这种张力暴露在切口时的切割位点,当切割时激活信号传导。虽然没有知道机械张力有助于在体内发挥作用,但是其他人表明这是受体 - 配体综合体的内吞作用如何有助于切割和活化的缺口。以类似的方式,由于蛹蝇的背部胸部的距离处的距离介导的横向抑制是通过致动蛋白的突起介导的,因此在循环期间可能通过丝状肌动蛋白和非肌肉肌蛋白的网络产生的细胞骨骼力突出扩展和收缩也有助于陷波信令。为了测试这一假设,我们对肌素II依赖性张力在陷波信号中的作用中进行了详细分析,在缺血和细胞培养中。使用Notch的动态荧光报告称,我们发现肌球蛋白II对于信号发送和在两个系统中的信号发送和接收细胞中的信号传导至关重要 - 如果缺口Δ复合物穿过肌蛋白II依赖性张力有助于陷入缺口激活。虽然发现肌球蛋白II在远处发射到发射信号,但是也需要在相邻的电池之间具有共享横向触点的相邻电池和用于培养细胞之间的信号传导。这些结果揭示了以前没有肌肉肌霉素II收缩性在Notch信号传导中的前未被覆富的作用,提供了进一步的支持,因为在依赖于配体依赖的信号传导的语境中,力量有助于在依赖配体的信号传导的背景下产生缺口,以及用于actomyosin的新范例基机机制。

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