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Phase geometries of two-dimensional excitable waves govern self-organized morphodynamics of amoeboid cells

机译:二维可激波的相几何控制着阿米巴样细胞的自组织形态动力学

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摘要

In both randomly moving Dictyostelium and mammalian cells, phosphatidylinositol (3,4,5)-trisphosphate and F-actin are known to propagate as waves at the membrane and act to push out the protruding edge. To date, however, the relationship between the wave geometry and the patterns of amoeboid shape change remains elusive. Here, by using phase map analysis, we show that morphology dynamics of randomly moving Dictyostelium discoideum cells can be characterized by the number, topology, and position of spatial phase singularities, i.e., points that represent organizing centers of rotating waves. A single isolated singularity near the cellular edge induced a rotational protrusion, whereas a pair of singularities supported a symmetric extension. These singularities appeared by strong phase resetting due to de novo nucleation at the back of preexisting waves. Analysis of a theoretical model indicated excitability of the system that is governed by positive feedback from phosphatidylinositol (3,4,5)-trisphosphate to PI3-kinase activation, and we showed experimentally that this requires F-actin. Furthermore, by incorporating membrane deformation into the model, we demonstrated that geometries of competing waves explain most of the observed semiperiodic changes in amoeboid morphology.
机译:在随机移动的梭菌和哺乳动物细胞中,磷脂酰肌醇(3,4,5)-三磷酸和F-肌动蛋白都以波的形式在膜上传播,并起着突出边缘的作用。然而,迄今为止,波的几何形状和变形形状变化之间的关系仍然难以捉摸。在这里,通过使用相位图分析,我们显示了随机移动的盘基网柄菌盘状细胞的形态动力学可以通过空间相位奇点的数量,拓扑和位置来表征,即代表旋转波的组织中心的点。靠近细胞边缘的单个孤立奇异点导致旋转突出,而一对奇异点支持对称延伸。这些奇异性是由于预先存在的波后部的从头成核作用而通过强相位重置而出现的。理论模型的分析表明,该系统的兴奋性受磷脂酰肌醇(3,4,5)-三磷酸对PI3激酶激活的正反馈支配,我们通过实验证明这需要F-肌动蛋白。此外,通过将膜变形合并到模型中,我们证明了竞争波的几何形状可以解释大多数观测到的半周期性形态学变化。

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