通过负粘度在上皮细胞单层中注入能量。

ArXiv Pub Date : 2025-01-06
Molly McCord, Jacob Notbohm
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引用次数: 0

摘要

活动流体被内部产生的力驱离热力学平衡,导致复杂的运动模式。即使力和运动都是可测量的,也不可能将两者联系起来,因为能量注入和耗散的来源往往不清楚。在这里,我们研究如何通过开发一种方法来测量粘度从剪切应力和应变率上皮细胞单层。令人惊讶的是,出现了多细胞区域,其中剪切应力和剪切应变率之间的关系成负比例,表明负粘度。我们提供了直接的实验证据,证明负粘度是由于细胞将其应力与流动方向对齐所致。负黏度区始终表现出较大的细胞速度和涡度,细胞代谢活性升高,表明负黏度是多余能量注入的一种机制。更广泛地说,我们的研究表明,负粘度是量化活性物质中能量流动的有用手段。
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Energy injection in an epithelial cell monolayer via negative viscosity.

Active fluids are driven out of thermodynamic equilibrium by internally generated forces, causing complex patterns of motion. Even when both the forces and motion are measurable, it is not yet possible to relate the two, because the sources of energy injection and dissipation are often unclear. Here, we study how energy is transferred by developing a method to measure viscosity from the shear stresses and strain rates within an epithelial cell monolayer. Surprisingly, there emerged multicellular regions in which the relationship between shear stress and shear strain rate was negatively proportional, indicating a negative viscosity. We provide direct experimental evidence that the negative viscosity results from cells aligning their stresses with the orientation of the flow. Regions of negative viscosity consistently exhibited greater cell speed and vorticity, and the cells had elevated metabolic activity, indicating that negative viscosity is a mechanism for injection of surplus energy. More broadly, our study shows that negative viscosity is a useful means of quantifying the flow of energy in active materials.

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