African Centre for Advanced Studies, P.O. Box 4477, Yaoundé, Cameroon.
Centre for Research in Infectious Disease, P.O. Box 13591, Yaoundé, Cameroon.
Sci Rep. 2023 Apr 5;13(1):5561. doi: 10.1038/s41598-023-31753-y.
This paper investigates a non-homogeneous two-dimensional model for reproducing chemotactic bacteria, immersed in a porous medium that experiences non-uniformly imposed flows. It is shown that independently of the form of the fluid velocity field, the compressible/incompressible nature of the fluid significantly shifts the Turing stability-instability transition line. In dry media, Gaussian perturbations travel faster than the hyperbolic secant ones, yet the latter exhibit better stability properties. The system becomes highly unstable under strong flows and high surface tension. Approximated solutions recovered by injecting Gaussian perturbations overgrow, in addition to triggering concentric breathing features that split the medium into high and low-density domains. Secant perturbations on the other hand scatter slowly and form patterns of non-uniformly distributed peaks for strong flows and high surface tension. These results emphasize that Gaussian perturbations strongly modulate the activity of bacteria, hence can be exploited to perform fast spreading in environments with changing properties. In this sense, Gaussian profiles are better candidates to explain quick bacterial responses to external factors. Secant-type approximated solutions slowly modulate the bacterial activity, hence are better alternatives to dive into weak bacterial progressions in heterogeneous media.
本文研究了一种用于重现处于多孔介质中趋化细菌的非均匀二维模型,该介质经历非均匀强制流动。结果表明,无论流体速度场的形式如何,流体的可压缩/不可压缩性质都会显著改变图灵稳定性不稳定性转变线。在干燥介质中,高斯型扰动比双曲正割型扰动传播得更快,但后者具有更好的稳定性。在强流和高表面张力下,系统变得高度不稳定。通过在高斯型扰动上注入高斯型扰动来恢复的近似解会过度生长,除了引发同心呼吸特征将介质分为高密度和低密度区域之外。另一方面,在强流和高表面张力下,双曲正割型扰动会缓慢散射,并形成不均匀分布的峰的模式。这些结果强调了高斯型扰动强烈调节细菌的活性,因此可以用来在性质不断变化的环境中快速传播。从这个意义上说,高斯分布更适合解释细菌对外界因素的快速反应。双曲正割型近似解缓慢调节细菌的活性,因此是在异质介质中进行弱细菌进程的更好选择。