论文标题

生物组织流变学的构成模型

Constitutive model for the rheology of biological tissue

论文作者

Fielding, Suzanne M., Cochran, James O., Huang, Junxiang, Bi, Dapeng, Marchetti, M. Cristina

论文摘要

生物组织的流变学是诸如胚胎发育,伤口愈合和癌症转移等过程的关键。汇合组织单层的顶点模型发现了通过细胞形状调整的自发性液体固体过渡。以及最初液样组织的剪切诱导的固化过渡。除了这种干扰/不弥补的行为外,生物组织还表现出固有的粘弹性,其时间和速率依赖性力学缓慢。通过这种动机,我们将模拟和连续理论结合在一起,以检查从Quastistatic到快速到快速的整个剪切速率中的顶点模型的流变学,从而阐明了其非线性应力 - 应变曲线在有限速率的剪切速率及其稳态流动率的稳态流动曲线之后,其稳定率的应变速率。我们制定了一个流变构成模型,该模型将细胞的形状结合起来流动并捕获组织固液转变及其丰富的线性和非线性流变学。

The rheology of biological tissue is key to processes such as embryo development, wound healing and cancer metastasis. Vertex models of confluent tissue monolayers have uncovered a spontaneous liquid-solid transition tuned by cell shape; and a shear-induced solidification transition of an initially liquid-like tissue. Alongside this jamming/unjamming behaviour, biological tissue also displays an inherent viscoelasticity, with a slow time and rate dependent mechanics. With this motivation, we combine simulations and continuum theory to examine the rheology of the vertex model in nonlinear shear across a full range of shear rates from quastistatic to fast, elucidating its nonlinear stress-strain curves after the inception of shear of finite rate, and its steady state flow curves of stress as a function of strain rate. We formulate a rheological constitutive model that couples cell shape to flow and captures both the tissue solid-liquid transition and its rich linear and nonlinear rheology.

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