小鼠胚胎中形成心内膜、背主动脉和头部血管的细胞的迁移途径。

Q2 Biochemistry, Genetics and Molecular Biology
C Collart, A Ciccarelli, K Ivanovitch, I Rosewell, S Kumar, G Kelly, A Edwards, J C Smith
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引用次数: 3

摘要

背景:羊膜的血管形成通常被视为两个空间和时间上不同的过程,分别发生在卵黄囊和胚胎中。然而,形成初级胚胎内脉管系统的细胞的空间起源仍然不确定。特别是,它们是原位获得造血内皮细胞的命运,还是从其他地方迁移?最近开发的成像技术,加上新的Tal1和现有的Flk1报告小鼠系,使我们能够直接研究这个问题,通过可视化细胞轨迹的生活和三维。结果:我们描述了细胞在小鼠胚胎中形成初级胚胎循环系统的途径。特别是,我们发现tal1阳性细胞从卵黄囊内迁移,在其远端边界,有助于心内膜、主动脉背侧和头部血管系统。其他Tal1阳性细胞,在卵黄囊内同样被激活,参与卵黄囊的血管系统。利用单细胞转录组学和我们的成像,我们确定VEGF和Apela是可能调节迁移到胚胎的潜在化学引诱剂。背主动脉和头部血管系统是已知的继发性造血部位;鉴于我们观察到的共同起源,我们研究心内膜是否也是如此。我们发现从心内膜壁出芽的细胞具有高Tal1表达和低Flk1表达,表明内皮细胞向造血细胞的转变。结论:与卵黄囊和胚胎循环系统由两个独立的过程形成的观点相反,我们的研究结果表明,来自卵黄囊的tal1阳性细胞对两个血管系统都有贡献。Tal1在这些细胞中的初始激活可能是通过一种共同的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The migratory pathways of the cells that form the endocardium, dorsal aortae, and head vasculature in the mouse embryo.

The migratory pathways of the cells that form the endocardium, dorsal aortae, and head vasculature in the mouse embryo.

The migratory pathways of the cells that form the endocardium, dorsal aortae, and head vasculature in the mouse embryo.

The migratory pathways of the cells that form the endocardium, dorsal aortae, and head vasculature in the mouse embryo.

Background: Vasculogenesis in amniotes is often viewed as two spatially and temporally distinct processes, occurring in the yolk sac and in the embryo. However, the spatial origins of the cells that form the primary intra-embryonic vasculature remain uncertain. In particular, do they obtain their haemato-endothelial cell fate in situ, or do they migrate from elsewhere? Recently developed imaging techniques, together with new Tal1 and existing Flk1 reporter mouse lines, have allowed us to investigate this question directly, by visualising cell trajectories live and in three dimensions.

Results: We describe the pathways that cells follow to form the primary embryonic circulatory system in the mouse embryo. In particular, we show that Tal1-positive cells migrate from within the yolk sac, at its distal border, to contribute to the endocardium, dorsal aortae and head vasculature. Other Tal1 positive cells, similarly activated within the yolk sac, contribute to the yolk sac vasculature. Using single-cell transcriptomics and our imaging, we identify VEGF and Apela as potential chemo-attractants that may regulate the migration into the embryo. The dorsal aortae and head vasculature are known sites of secondary haematopoiesis; given the common origins that we observe, we investigate whether this is also the case for the endocardium. We discover cells budding from the wall of the endocardium with high Tal1 expression and diminished Flk1 expression, indicative of an endothelial to haematopoietic transition.

Conclusions: In contrast to the view that the yolk sac and embryonic circulatory systems form by two separate processes, our results indicate that Tal1-positive cells from the yolk sac contribute to both vascular systems. It may be that initial Tal1 activation in these cells is through a common mechanism.

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来源期刊
BMC Developmental Biology
BMC Developmental Biology 生物-发育生物学
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: BMC Developmental Biology is an open access, peer-reviewed journal that considers articles on the development, growth, differentiation and regeneration of multicellular organisms, including molecular, cellular, tissue, organ and whole organism research.
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