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模型生物组织中屈服应力和力学可塑性的起源

Origin of yield stress and mechanical plasticity in model biological tissues.

作者信息

Nguyen Anh Q, Huang Junxiang, Bi Dapeng

机构信息

Department of Physics, Northeastern University, Boston, MA 02115, USA and Center for Theoretical Biological Physics, Northeastern University, Boston, Massachusetts 02215, USA.

出版信息

ArXiv. 2025 Jan 31:arXiv:2409.04383v2.

Abstract

During development and under normal physiological conditions, biological tissues are continuously subjected to substantial mechanical stresses. In response to large deformations cells in a tissue must undergo multicellular rearrangements in order to maintain integrity and robustness. However, how these events are connected in time and space remains unknown. Here, using computational and theoretical modeling, we studied the mechanical plasticity of epithelial monolayers under large deformations. Our results demonstrate that the jamming-unjamming (solid-fluid) transition in tissues can vary significantly depending on the degree of deformation, implying that tissues are highly unconventional materials. Using analytical modeling, we elucidate the origins of this behavior. We also demonstrate how a tissue accommodates large deformations through a collective series of rearrangements, which behave similarly to avalanches in non-living materials. We find that these 'tissue avalanches' are governed by stress redistribution and the spatial distribution of vulnerable spots. Finally, we propose a simple and experimentally accessible framework to predict avalanches and infer tissue mechanical stress based on static images.

摘要

在发育过程以及正常生理条件下,生物组织持续承受着巨大的机械应力。为响应大变形,组织中的细胞必须进行多细胞重排,以维持完整性和稳健性。然而,这些事件在时间和空间上是如何关联的,仍然未知。在此,我们使用计算和理论建模方法,研究了上皮单层在大变形下的机械可塑性。我们的结果表明,组织中的堵塞-解堵塞(固体-流体)转变会因变形程度的不同而有显著差异,这意味着组织是高度非常规的材料。通过分析建模,我们阐明了这种行为的起源。我们还展示了组织如何通过一系列集体重排来适应大变形,这些重排与非生物材料中的雪崩行为相似。我们发现这些“组织雪崩”受应力重新分布和脆弱点的空间分布支配。最后,我们提出了一个简单且实验上可实现的框架,用于基于静态图像预测雪崩并推断组织机械应力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fb0/11887971/a45af06cc4c7/nihpp-2409.04383v2-f0001.jpg

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