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发育中的脊椎动物躯干中的血管生成网络形成。

Angiogenic network formation in the developing vertebrate trunk.

作者信息

Isogai Sumio, Lawson Nathan D, Torrealday Saioa, Horiguchi Masaharu, Weinstein Brant M

机构信息

Laboratory of Molecular Genetics, NICHD, NIH, Bethesda, MD 20892, USA.

出版信息

Development. 2003 Nov;130(21):5281-90. doi: 10.1242/dev.00733. Epub 2003 Sep 3.

Abstract

We have used time-lapse multiphoton microscopy of living Tg(fli1:EGFP)y1 zebrafish embryos to examine how a patterned, functional network of angiogenic blood vessels is generated in the early vertebrate trunk. Angiogenic vascular sprouts emerge from the longitudinal trunk axial vessels (the dorsal aorta and posterior cardinal vein) in two spatially and temporally distinct steps. Dorsal aorta-derived sprouts form an initial primary network of vascular segments, followed by emergence of vein-derived secondary vascular sprouts that interact and interconnect dynamically with the primary network to initiate vascular flow. Using transgenic silent heart mutant embryos, we show that the gross anatomical patterning of this network of vessels does not require blood circulation. However, our results suggest that circulatory flow dynamics play an important role in helping to determine the pattern of interconnections between the primary network and secondary sprouts, and thus the final arterial or venous identity of the vessels in the functional network. We discuss a model to explain our results combining genetic programming of overall vascular architecture with hemodynamic determination of circulatory flow patterns.

摘要

我们利用活体转基因斑马鱼胚胎Tg(fli1:EGFP)y1的延时多光子显微镜技术,来研究早期脊椎动物躯干中如何生成有模式的、功能性的血管生成网络。血管生成的血管芽从纵向躯干轴血管(背主动脉和后主静脉)以两个在空间和时间上不同的步骤出现。背主动脉衍生的芽形成血管段的初始初级网络,随后静脉衍生的次级血管芽出现,与初级网络动态相互作用并相互连接以启动血流。利用转基因静息心脏突变体胚胎,我们发现这个血管网络的大体解剖模式不需要血液循环。然而,我们的结果表明,循环流动动力学在帮助确定初级网络和次级芽之间的连接模式方面起着重要作用,从而在功能网络中确定血管的最终动脉或静脉身份。我们讨论了一个模型来解释我们的结果,该模型将整体血管结构的基因编程与循环流动模式的血流动力学决定相结合。

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