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首页> 外文期刊>Blood: The Journal of the American Society of Hematology >Hedgehog signaling via a calcitonin receptor-like receptor can induce arterial differentiation independently of VEGF signaling in zebrafish
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Hedgehog signaling via a calcitonin receptor-like receptor can induce arterial differentiation independently of VEGF signaling in zebrafish

机译:通过降钙素受体样受体的刺猬信号转导可独立于斑马鱼中的VEGF信号诱导动脉分化

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摘要

Multiple signaling pathways control the specification of endothelial cells (ECs) to become arteries or veins during vertebrate embryogenesis. Current models propose that a cascade of Hedgehog (Hh), vascular endothelial growth factor (VEGF), and Notch signaling acts instructively on ECs to control the choice between arterial or venous fate. Differences in the phenotypes induced by Hh, VEGF, or Notch inhibition suggest that not all of the effects of Hh on arteriovenous specification are mediated by VEGF. We establish that full derepression of the Hh pathway in ptc1;ptc2 mutants converts the posterior cardinal vein into a second arterial vessel that manifests intact arterial gene expression, intersegmental vessel sprouting, and HSC gene expression. Importantly, although VEGF was thought to be absolutely essential for arterial fates, we find that normal and ectopic arterial differentiation can occur without VEGF signaling in ptc1;ptc2 mutants. Furthermore, Hh is able to bypass VEGF to induce arterial differentiation in ECs via the calcitonin receptor-like receptor, thus revealing a surprising complexity in the interplay between Hh and VEGF signaling during arteriovenous specification. Finally, our experiments establish a dual function of Hh during induction of runx1 +HSCs.
机译:多种信号通路控制着脊椎动物胚胎发生过程中内皮细胞(EC)成为动脉或静脉的规格。当前的模型提出,刺猬(Hh),血管内皮生长因子(VEGF)和Notch信号的级联对EC具有指导作用,以控制动脉或静脉命运之间的选择。由Hh,VEGF或Notch抑制诱导的表型差异表明,并非Hh对动静脉规格的所有影响都由VEGF介导。我们建立了ptc1; ptc2突变体中Hh通路的完全抑制,将后主静脉转换为第二条动脉血管,该血管显示完整的动脉基因表达,节间血管发芽和HSC基因表达。重要的是,尽管人们认为VEGF对于动脉命运绝对是必不可少的,但我们发现ptc1; ptc2突变体中正常的和异位的动脉分化可在没有VEGF信号的情况下发生。此外,Hh能够通过降钙素受体样受体绕过VEGF诱导EC的动脉分化,从而揭示了动静脉规格期间Hh与VEGF信号传导之间相互作用的惊人复杂性。最后,我们的实验在runx1 + HSC诱导过程中建立了Hh的双重功能。

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