论文标题

变形虫和角膜细胞样迁移模式之间的自发过渡

Spontaneous transitions between amoeboid and keratocyte-like modes of migration

论文作者

Moldenhawer, T., Moreno, E., Schindler, D., Flemming, S., Holschneider, M., Huisinga, W., Alonso, S., Beta, C.

论文摘要

粘附真核细胞的运动性是由肌动蛋白细胞骨架的动力学驱动的。尽管产生了共同的力量肌动蛋白机制,但不同的细胞类型通常显示出各种运动模式,其形状动力学,速度和运动的持久性不同。最近,迪斯特尔迪斯特尔的实验表明,根据遗传修饰,发育条件和细胞内信号传导的合成变化,可以在该模型生物体中诱导不同的运动模式。在这里,我们报告了实验证据,表明在突变的D. distoideum细胞系中,RAS活性增加,在两种不同的迁移模式之间进行切换,动力运动的变形虫和扇形类型,甚至可以自发发生在同一细胞内。我们观察并表征了两种运动模式之间的重复和可逆切换,这表明它们是在同一细胞内共存的不同行为特征。我们改编了一个已建立的现象学运动模型,该模型将细胞内动力学的反应扩散系统与动态相位场结合在一起,以解释我们的实验发现。

The motility of adherent eukaryotic cells is driven by the dynamics of the actin cytoskeleton. Despite the common force-generating actin machinery, different cell types often show diverse modes of locomotion that differ in their shape dynamics, speed, and persistence of motion. Recently, experiments in Dictyostelium discoideum have revealed that different motility modes can be induced in this model organism, depending on genetic modifications, developmental conditions, and synthetic changes of intracellular signaling. Here, we report experimental evidence that in a mutated D. discoideum cell line with increased Ras activity, switches between two distinct migratory modes, the amoeboid and fan-shaped type of locomotion, can even spontaneously occur within the same cell. We observed and characterized repeated and reversible switchings between the two modes of locomotion, suggesting that they are distinct behavioral traits that coexist within the same cell. We adapted an established phenomenological motility model that combines a reaction-diffusion system for the intracellular dynamics with a dynamic phase field to account for our experimental findings.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源