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Oscillations and uniaxial mechanochemical waves in a model of an active poroelastic medium: application to deformation patterns in protoplasmic droplets of Physarum polycephalum

机译:活性多孔弹性介质模型中的振荡和单轴机械化学波:应用于多头绒泡菌原生质液滴的变形模式

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摘要

Self-organization in cells often manifests itself in oscillations and waves. Here, we address deformation waves in protoplasmic droplets of the plasmodial slime mould Physarum polycephalum by modelling and experiments. In particular, we extend a one-dimensional model that considered the cell as a poroelastic medium, where active tension caused mechanochemical waves that were regulated by an inhibitor (Radszuweit et al., 2013). Our extension consists of a simple, qualitative chemical reaction–diffusion model (Brusselator) that describes the regulation of the inhibitor by another biochemical species. The biochemical reaction enhances the formation of mechanochemical waves if the reaction rates and input\udconcentrations are near or inside an oscillatory regime. The period of the waves is found to be controlled by the characteristic oscillation period, whereas their wavelength is set by mechanical parameters. The model also allows for a systematic study of the chemical activity at the onset of mechanochemical waves. We also present examples for pattern formation in protoplasmic droplets of Physarum polycephalum including global oscillations where the central region of the droplets is in antiphase to the boundary zone, as well as travelling and standing wave-like uniaxial patterns. Finally, we apply our model to reproduce these experimental results by identifying the active tension inhibitor with the intracellular calcium\udconcentration in the Physarum droplets and by using parameter values from mechanical experiments, respectively knowledge about the properties of calcium oscillations in Physarum. The simulation results are then found to be in good agreement with the experimental observations.
机译:细胞中的自组织通常表现为振荡和波动。在这里,我们通过建模和实验解决浆状粘液霉菌多头cephal的原生质滴中的形变波。特别是,我们扩展了将细胞视为多孔弹性介质的一维模型,其中主动张力引起了机械化学波,而机械波受到抑制剂的调节(Radszuweit等人,2013)。我们的扩展包括一个简单的,定性的化学反应扩散模型(Brusselator),该模型描述了另一种生化物种对抑制剂的调节。如果反应速率和输入浓度/浓度接近或处于振荡状态,则生化反应会增强机械化学波的形成。发现波的周期由特征振荡周期控制,而其波长由机械参数设置。该模型还允许系统地研究机械化学波发作时的化学活性。我们还提供了多头Phys浆原生质体液滴中的模式形成示例,包括全局振荡,其中液滴的中心区域与边界区域反相,以及行进和驻波状单轴模式。最后,我们通过将活性张力抑制剂与with浆液液滴中的细胞内钙\超浓度进行识别,并利用机械实验中的参数值以及有关浆液中钙振荡特性的知识,应用我们的模型来重现这些实验结果。然后发现仿真结果与实验观察结果非常吻合。

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