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首页> 外文期刊>Genes and Development: a Journal Devoted to the Molecular Analysis of Gene Expression in Eukaryotes, Prokaryotes, and Viruses >Semaphorin 3E-Plexin-D1 signaling regulates VEGF function in developmental angiogenesis via a feedback mechanism.
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Semaphorin 3E-Plexin-D1 signaling regulates VEGF function in developmental angiogenesis via a feedback mechanism.

机译:Semaphorin 3E-Plexin-D1信号传导通过反馈机制调节发育性血管生成中的VEGF功能。

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摘要

Blood vessel networks are typically formed by angiogenesis, a process in which new vessels form by sprouting of endothelial cells from pre-existing vessels. This process is initiated by vascular endothelial growth factor (VEGF)-mediated tip cell selection and subsequent angiogenic sprouting. Surprisingly, we found that VEGF directly controls the expression of Plexin-D1, the receptor for the traditional repulsive axon guidance cue, semaphorin 3E (Sema3E). Sema3E-Plexin-D1 signaling then negatively regulates the activity of the VEGF-induced Delta-like 4 (Dll4)-Notch signaling pathway, which controls the cell fate decision between tip and stalk cells. Using the mouse retina as a model system, we show that Plexin-D1 is selectively expressed in endothelial cells at the front of actively sprouting blood vessels and its expression is tightly controlled by VEGF secreted by surrounding tissues. Therefore, although the Sema3E secreted by retinal neurons is evenly distributed throughout the retina, Sema3E-Plexin-D1 signaling is spatially controlled by VEGF through its regulation of Plexin-D1. Moreover, we show that gain and loss of function of Sema3E and Plexin-D1 disrupts normal Dll4 expression, Notch activity, and tip/stalk cell distribution in the retinal vasculature. Finally, the retinal vasculature of mice lacking sema3E or plexin-D1 has an uneven growing front, a less-branched vascular network, and abnormal distribution of dll4-positive cells. Lowering Notch activity in the mutant mice can reverse this defect, solidifying the observation that Dll4-Notch signaling is regulated by Sema3E-Plexin-D1 and is required for its function in vivo. Together, these data reveal a novel role of Sema3E-Plexin-D1 function in modulating angiogenesis via a VEGF-induced feedback mechanism.
机译:血管网络通常是通过血管生成形成的,在该过程中,新血管通过从先前存在的血管中萌发内皮细胞而形成。该过程是由血管内皮生长因子(VEGF)介导的提示细胞选择和随后的血管生成萌芽引发的。出乎意料的是,我们发现VEGF直接控制Plexin-D1的表达,Plexin-D1是传统斥力轴突指导信号semaphorin 3E(Sema3E)的受体。然后,Sema3E-Plexin-D1信号传导负调控VEGF诱导的Delta-like 4(Dll4)-Notch信号传导通路的活性,该通路控制着梢细胞和茎细胞之间的细胞命运决定。使用小鼠视网膜作为模型系统,我们显示Plexin-D1在主动发芽的血管前端的内皮细胞中选择性表达,其表达受周围组织分泌的VEGF严格控制。因此,尽管视网膜神经元分泌的Sema3E均匀分布在整个视网膜中,但Sema3E-Plexin-D1信号通过其对Plexin-D1的调节而受到VEGF的空间控制。此外,我们显示Sema3E和Plexin-D1功能的获得和丧失会破坏正常Dll4的表达,Notch活性以及视网膜血管系统中的尖端/茎细胞分布。最后,缺乏sema3E或plexin-D1的小鼠的视网膜脉管系统具有不均匀的生长前线,较不分支的血管网络以及dll4阳性细胞的异常分布。降低突变小鼠的Notch活性可以逆转这种缺陷,巩固了Dll4-Notch信号转导受Sema3E-Plexin-D1调节并且是其体内功能所必需的观察。总之,这些数据揭示了Sema3E-Plexin-D1功能在通过VEGF诱导的反馈机制调节血管生成中的新作用。

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