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Spatially restricted patterning cues provided by heparin-binding VEGF-A control blood vessel branching morphogenesis

机译:肝素结合VEGF-A提供的空间受限模式提示控制血管分支形态发生

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摘要

Branching morphogenesis in the mammalian lung and Drosophila trachea relies on the precise localization of secreted modulators of epithelial growth to select branch sites and direct branch elongation, but the intercellular signals that control blood vessel branching have not been previously identified. We found that VEGF120/120 mouse embryos, engineered to express solely an isoform of VEGF-A that lacks heparin-binding, and therefore extracellular matrix interaction domains, exhibited a specific decrease in capillary branch formation. This defect was not caused by isoform-specific differences in stimulating endothelial cell proliferation or by impaired isoform-specific signaling through the Nrp1 receptor. Rather, changes in the extracellular localization of VEGF-A in heparin-binding mutant embryos resulted in an altered distribution of endothelial cells within the growing vasculature. Instead of being recruited into additional branches, nascent endothelial cells were preferentially integrated within existing vessels to increase lumen caliber. The disruption of the normal VEGF-A concentration gradient also impaired the directed extension of endothelial cell filopodia, suggesting that heparin-binding VEGF-A isoforms normally provide spatially restricted stimulatory cues that polarize and thereby guide sprouting endothelial cells to initiate vascular branch formation. Consistent with this idea, we found opposing defects in embryos harboring only a heparin-binding isoform of VEGF-A, including excess endothelial filopodia and abnormally thin vessel branches in ectopic sites. We conclude that differential VEGF-A isoform localization in the extracellular space provides a control point for regulating vascular branching pattern.
机译:哺乳动物肺和果蝇气管中的分支形态发生依赖于分泌的上皮生长调节剂的精确定位来选择分支部位和直接分支伸长,但是控制血管分支的细胞间信号以前尚未被鉴定。我们发现,仅表达缺乏肝素结合的VEGF-A异构体的VEGF120 / 120小鼠胚胎,因此细胞外基质相互作用域,在毛细血管分支形成方面表现出特定的减少。此缺陷不是由刺激内皮细胞增殖的异构体特异性差异引起的,也不是由Nrp1受体的异构体特异性信号传导受损引起的。相反,肝素结合突变型胚胎中VEGF-A在细胞外定位的变化导致内皮细胞在不断增长的脉管系统中分布的改变。新生内皮细胞没有被募集到其他分支中,而是优先整合在现有血管中以增加管腔口径。正常VEGF-A浓度梯度的破坏也损害了内皮细胞丝状伪足的定向延伸,这表明结合肝素的VEGF-A同工型通常会提供受空间限制的刺激信号,使它们极化并由此引导发芽的内皮细胞启动血管分支的形成。与这个想法一致,我们在仅包含肝素结合型VEGF-A的胚胎中发现了相反的缺陷,包括过量的内皮丝状伪足和异位部位异常细的血管分支。我们得出的结论是,差异性VEGF-A亚型在细胞外空间的定位为调节血管分支模式提供了一个控制点。

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