Houston Alexander J H, Mottram Nigel J
School of Mathematics and Statistics, University Place, Glasgow, G12 8QQ United Kingdom.
Commun Phys. 2024;7(1):375. doi: 10.1038/s42005-024-01864-7. Epub 2024 Nov 19.
Incorporating the inherent heterogeneity of living systems into models of active nematics is essential to provide a more realistic description of biological processes such as bacterial growth, cell dynamics and tissue development. Spontaneous flow of a confined active nematic is a fundamental feature of these systems, in which the role of heterogeneity has not yet been considered. We therefore determine the form of spontaneous flow transition for an active nematic film with heterogeneous activity, identifying a correspondence between the unstable director modes and solutions to Schrödinger's equation. We consider both activity gradients and steps between regions of distinct activity, finding that such variations can change the signature properties of the flow. The threshold activity required for the transition can be raised or lowered, the fluid flux can be reduced or reversed and interfaces in activity induce shear flows. In a biological context fluid flux influences the spread of nutrients while shear flows affect the behaviour of rheotactic microswimmers and can cause the deformation of biofilms. All the effects we identify are found to be strongly dependent on not simply the types of activity present in the film but also on how they are distributed.
将生命系统固有的异质性纳入活性向列相模型,对于更真实地描述细菌生长、细胞动态和组织发育等生物过程至关重要。受限活性向列相的自发流动是这些系统的一个基本特征,其中异质性的作用尚未得到考虑。因此,我们确定了具有异质活性的活性向列相薄膜自发流动转变的形式,确定了不稳定指向矢模式与薛定谔方程解之间的对应关系。我们考虑了活性梯度以及不同活性区域之间的跃变,发现这种变化可以改变流动的特征性质。转变所需的阈值活性可以提高或降低,流体通量可以减少或反转,活性界面会诱导剪切流。在生物学背景下,流体通量影响营养物质的扩散,而剪切流影响趋流性微游动体的行为,并可导致生物膜变形。我们发现,所有这些效应不仅强烈依赖于薄膜中存在的活性类型,还依赖于它们的分布方式。