WASp控制内皮细胞的定向迁移,以实现功能性血管模式

A. Rosa, W. Giese, Katja Meier, Silvanus Alt, Alexandra Klaus-Bergmann, Lowell T. Edgar, Eireen Bartels, Russell T Collins, Anna Szymborska, Baptiste Coxam, M. Bernabeu, H. Gerhardt
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引用次数: 11

摘要

内皮细胞的迁移和增殖对血管分层组织的建立和血液的优化分布至关重要。然而,这些细胞过程是如何协调的仍然未知。通过对斑马鱼躯干血管系统的研究,我们发现血管内皮细胞比动脉内皮细胞增殖更多,并优先向邻近动脉迁移。在未来的动脉中,内皮细胞表现为双相迁移。在发芽期间,细胞远离背主动脉,在重塑期间,细胞停止或向喂养主动脉移动。因此,血管的最终形态是通过局部增殖和定向细胞向邻近血管的迁移而建立的。此外,我们确定WASp对于这种差异迁移是必不可少的。WASp的缺失导致内皮细胞分布不规则,静脉明显扩大,持续动静脉分流。在机制上,我们报道WASp驱动连接相关肌动蛋白丝的组装,并且是PECAM-1连接表达所必需的。总之,我们的数据表明,斑马鱼躯干的功能性血管模式利用了由连接肌动蛋白调节的差异细胞运动,而差异迁移的中断可能代表了血管畸形的一种病理机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
WASp controls oriented migration of endothelial cells to achieve functional vascular patterning
Endothelial cell migration and proliferation are essential for the establishment of a hierarchical organization of blood vessels and optimal distribution of blood. However, how these cellular processes are coordinated remains unknown. Here, using the zebrafish trunk vasculature we show that in future veins endothelial cells proliferate more than in future arteries and migrate preferentially towards neighboring arteries. In future arteries endothelial cells show a biphasic migration profile. During sprouting cells move away from the dorsal aorta, during remodelling cells stop or move towards the feeding aorta. The final morphology of blood vessels is thus established by local proliferation and oriented cell migration to and from neighboring vessels. Additionally, we identify WASp to be essential for this differential migration. Loss of WASp leads to irregular distribution of endothelial cells, substantially enlarged veins and persistent arteriovenous shunting. Mechanistically, we report that WASp drives the assembly of junctional associated actin filaments and is required for junctional expression of PECAM-1. Together, our data identify that functional vascular patterning in the zebrafish trunk utilizes differential cell movement regulated by junctional actin, and that interruption of differential migration may represent a pathomechanism in vascular malformations.
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