论文标题

在标量场梯度中变形极性物质

Deforming polar active matter in a scalar field gradient

论文作者

Ibrahimi, Muhamet, Merkel, Matthias

论文摘要

具有局部极性或列表的活性物质受到众所周知的Simha-ramaswamy不稳定性的影响。到目前为止,尚不清楚,尽管这种不稳定,生物组织如何在动物形态发生过程中经历强大的主动各向异性变形。在这里,我们表明蛋白质浓度梯度(例如,形态梯度)可以控制细胞之间的大规模协调,可以稳定这种变形。为此,我们研究了活性极性材料的流体动力学模型。为了说明蛋白质梯度的效果,极性场与标量场的边界提供的梯度耦合,该标量也以材料流进行了。我们特别表明:(i)该系统可以在标量场梯度和主动应力之间有效扩展耦合,即梯度扩张耦合,而对于梯度承诺耦合始终是不稳定的,则系统可以稳定。有趣的是,生物学文献中有许多系统是梯度扩张的,而我们找不到明显梯度取消的任何系统。 (ii)稳定性受到极性幅度控制方式的强烈影响。综上所述,如果经过实验确认,我们的发现提出了直接植根于活性物理学的新发展原理。

Active matter with local polar or nematic order is subject to the well-known Simha-Ramaswamy instability. It is so far unclear how, despite this instability, biological tissues can undergo robust active anisotropic deformation during animal morphogenesis. Here we show that protein concentration gradients (e.g. morphogen gradients), which are known to control large-scale coordination among cells, can stabilize such deformations. To this end, we study a hydrodynamic model of an active polar material. To account for the effect of the protein gradient, the polar field is coupled to the boundary-provided gradient of a scalar field that also advects with material flows. Focusing on the large system size limit, we show in particular: (i) The system can be stable for an effectively extensile coupling between scalar field gradient and active stresses, i.e. gradient-extensile coupling, while it is always unstable for a gradient-contractile coupling. Intriguingly, there are many systems in the biological literature that are gradient-extensile, while we could not find any that are clearly gradient-contractile. (ii) Stability is strongly affected by the way polarity magnitude is controlled. Taken together, our findings, if experimentally confirmed, suggest new developmental principles that are directly rooted in active matter physics.

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