Department of Nutrition, CEBAS-CSIC Institute, Espinardo University Campus, Murcia, 30100, Spain.
Department of Mathematics, Faculty of Science and Technology, University of the Basque Country, UPV/EHU, Leioa, 48940, Spain.
Sci Rep. 2019 Nov 8;9(1):16369. doi: 10.1038/s41598-019-52716-2.
For a wide range of cells, from bacteria to mammals, locomotion movements are a crucial systemic behavior for cellular life. Despite its importance in a plethora of fundamental physiological processes and human pathologies, how unicellular organisms efficiently regulate their locomotion system is an unresolved question. Here, to understand the dynamic characteristics of the locomotion movements and to quantitatively study the role of the nucleus in the migration of Amoeba proteus we have analyzed the movement trajectories of enucleated and non-enucleated amoebas on flat two-dimensional (2D) surfaces using advanced non-linear physical-mathematical tools and computational methods. Our analysis shows that both non-enucleated and enucleated amoebas display the same kind of dynamic migration structure characterized by highly organized data sequences, super-diffusion, non-trivial long-range positive correlations, persistent dynamics with trend-reinforcing behavior, and move-step fluctuations with scale invariant properties. Our results suggest that the presence of the nucleus does not significantly affect the locomotion of amoeba in 2D environments.
对于从细菌到哺乳动物等广泛的细胞来说,运动是细胞生命的重要系统行为。尽管它在众多基本生理过程和人类病理学中都很重要,但单细胞生物如何有效地调节其运动系统仍是一个未解决的问题。在这里,为了了解运动的动态特征,并定量研究细胞核在变形虫迁移中的作用,我们使用先进的非线性物理数学工具和计算方法,分析了去核和未去核变形虫在二维(2D)表面上的运动轨迹。我们的分析表明,未去核和去核的变形虫都表现出相同类型的动态迁移结构,其特点是高度组织化的数据序列、超级扩散、非平凡的长程正相关、具有趋势增强行为的持久动力学以及具有标度不变特性的移动步长波动。我们的结果表明,细胞核的存在并不会显著影响变形虫在 2D 环境中的运动。