Tachikawa Masashi, Mochizuki Atsushi
Theoretical Biology Laboratory, RIKEN, Japan.
Theoretical Biology Laboratory, RIKEN, Japan; Core Research for Evolutional Science and Technology, Japan Science and Technology Agency, Japan.
J Theor Biol. 2015 Jan 7;364:260-5. doi: 10.1016/j.jtbi.2014.09.023. Epub 2014 Sep 27.
The cytoplasms of ameboid cells are nonlinearly viscous. The cell controls this viscosity by modulating the amount, localization and interactions of bio-polymers. Here we investigated how the nonlinearity infers the cellular behaviors and whether nonlinearity-specific behaviors exist. We modeled the developed plasmodium of the slime mold Physarum polycephalum as a network of branching tubes and examined the linear and nonlinear viscous cytoplasm flows in the tubes. We found that the nonlinearity in the cytoplasm׳s viscosity induces a novel type of symmetry breaking in the protoplasmic flow. We also show that symmetry breaking can play an important role in adaptive behaviors, namely, connection of behavioral modes implemented on different time scales and transportation of molecular signals from the front to the rear of the cell during cellular locomotion.
变形细胞的细胞质具有非线性粘性。细胞通过调节生物聚合物的数量、定位和相互作用来控制这种粘性。在此,我们研究了非线性如何推断细胞行为以及是否存在特定于非线性的行为。我们将黏菌多头绒泡菌发育中的原质团建模为分支管网络,并研究了管中线性和非线性粘性细胞质流。我们发现细胞质粘性中的非线性会在原生质流中引发一种新型的对称性破缺。我们还表明,对称性破缺在适应性行为中可发挥重要作用,即在细胞运动过程中,连接在不同时间尺度上实现的行为模式以及将分子信号从细胞前端传输至后端。