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Tube fusion: Making connections in branched tubular networks

机译:管融合:在分支管网络中建立连接

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摘要

Organs like the vertebrate vascular system and the insect tracheal system develop from separate primordia that undergo fusion events to form interconnected tubular networks. Although the correct pattern of tubular connections (anastomoses) in these organs is crucial for their normal function, the cellular and molecular mechanisms that govern tube fusion are only beginning to be understood. The process of tube fusion involves tip cell specification, cell-cell recognition and contact formation, self-avoidance, changes in cell shape and topology, lumen formation, and luminal membrane fusion. Significant insights into the underlying cellular machinery have been gained from genetic studies of tracheal tube fusion in Drosophila. Here, we summarize these findings and we highlight similarities and differences between tube fusion processes in the Drosophila tracheae and in the vertebrate vascular system. We integrate the findings from studies in vivo with the important mechanistic insights that have been gained from the analysis of tubulogenesis in cultured cells to propose a mechanistic model of tube fusion, aspects of which are likely to apply to diverse organs and organisms.
机译:诸如脊椎动物的血管系统和昆虫的气管系统之类的器官是从分开的原基发育而来的,这些原基经历融合事件以形成相互连接的管状网络。尽管这些器官中的管状连接(吻合口)的正确模式对于它们的正常功能至关重要,但是控制管融合的细胞和分子机制才刚刚开始被理解。管融合的过程涉及尖端细胞规格,细胞间识别和接触形成,自我避免,细胞形状和拓扑结构的变化,管腔形成和腔膜融合。从果蝇气管插管融合的遗传研究中获得了对潜在细胞机制的重要见解。在这里,我们总结了这些发现,并强调了果蝇气管和脊椎动物血管系统中管融合过程之间的相似性和差异。我们将来自体内研究的发现与从对培养细胞的微管生成的分析中获得的重要机械观点相结合,提出了一种管融合的机械模型,该模型的各个方面可能适用于各种器官和生物。

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