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Visualizing mesoderm and neural crest cell dynamics during chick head morphogenesis

机译:在小鸡头形态发生期间可视化中胚层和神经嵴细胞动态

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Vertebrate head morphogenesis involves carefully-orchestrated tissue growth and cell movements of the mesoderm and neural crest to form the distinct craniofacial pattern. To better understand structural birth defects, it is important that we characterize the dynamics of these processes and learn how they rely on each other. Here we examine this question during chick head morphogenesis using time-lapse imaging, computational modeling, and experiments. We find that head mesodermal cells in culture move in random directions as individuals and move faster in the presence of neural crest cells. In vivo, mesodermal cells migrate in a directed manner and maintain neighbor relationships; neural crest cells travel through the mesoderm at a faster speed. The mesoderm grows with a non-uniform spatio-temporal profile determined by BrdU labeling during the period of faster and more-directed neural crest collective migration through this domain. We use computer simulations to probe the robustness of neural crest stream formation by varying the spatio-temporal growth profile of the mesoderm. We follow this with experimental manipulations that either stop mesoderm growth or prevent neural crest migration and observe changes in the non-manipulated cell population, implying a dynamic feedback between tissue growth and neural crest cell signaling to confer robustness to the system. Overall, we present a novel descriptive analysis of mesoderm and neural crest cell dynamics that reveals the coordination and co-dependence of these two cell populations during head morphogenesis.
机译:脊椎动物头部形态发生涉及细心的核心组织生长和中胚层和神经嵴的细胞运动,以形成不同的颅面图案。为了更好地了解结构的出生缺陷,重要的是,我们表征了这些流程的动态,并了解他们如何依赖彼此。在这里,我们使用时间流逝成像,计算建模和实验期间在小鸡头形态发生期间检查这个问题。我们发现文化中的头部中胚层细胞在随机方向上随便移动,并在神经顶部细胞的存在下移动得更快。在体内,中胚层细胞以指向的方式迁移并保持邻居关系;神经嵴细胞以更快的速度穿过中胚层。中胚层的生长在通过该领域的更快和更多的神经嵴集体迁移期间由Brdu标记确定的不均匀的时空曲线。我们使用计算机模拟来探测神经嵴流形成的鲁棒性,改变中胚层的时空生长曲线。我们用实验性操纵来阻止中胚层生长或预防神经嵴迁移并观察非操纵细胞群的变化,这意味着组织生长和神经嵴电池信令之间的动态反馈,以赋予系统的鲁棒性。总体而言,我们提出了一种新颖的描述性分析和神经嵴细胞动力学,揭示了在头部形态发生期间这两个细胞群的协调和共同依赖性。

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