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活细胞的机械复杂性可以映射到简单的均匀等效物上。

Mechanical complexity of living cells can be mapped onto simple homogeneous equivalents.

机构信息

Theoretische Physik VI, Biofluid Simulation and Modeling, Universität Bayreuth, 95440, Bayreuth, Germany.

出版信息

Biomech Model Mechanobiol. 2024 Jun;23(3):1067-1076. doi: 10.1007/s10237-024-01823-9. Epub 2024 Feb 27.

Abstract

Biological cells are built up from different constituents of varying size and stiffness which all contribute to the cell's mechanical properties. Despite this heterogeneity, in the analysis of experimental measurements one often assumes a strongly simplified homogeneous cell and thus a single elastic modulus is assigned to the entire cell. This ad-hoc simplification has so far mostly been used without proper justification. Here, we use computer simulations to show that indeed a mechanically heterogeneous cell can effectively be replaced by a homogeneous equivalent cell with a volume averaged elastic modulus. To demonstrate the validity of this approach, we investigate a hyperelastic cell with a heterogeneous interior under compression and in shear/channel flow mimicking atomic force and microfluidic measurements, respectively. We find that the homogeneous equivalent cell reproduces quantitatively the behavior of its heterogeneous counterpart, and that this equality is largely independent of the stiffness or spatial distribution of the heterogeneity.

摘要

生物细胞由不同大小和硬度的成分组成,这些成分共同构成了细胞的力学特性。尽管存在这种异质性,但在分析实验测量时,人们通常假设细胞具有强烈简化的均匀性,因此将单个弹性模量分配给整个细胞。这种任意简化迄今为止大多是在没有适当理由的情况下使用的。在这里,我们使用计算机模拟表明,实际上,具有机械异质性的细胞可以有效地用体积平均弹性模量的均匀等效细胞代替。为了证明这种方法的有效性,我们分别在压缩下和剪切/通道流中研究了具有异质内部的超弹性细胞,以模拟原子力和微流控测量。我们发现,均匀等效细胞定量地再现了其不均匀对应物的行为,并且这种等价性在很大程度上与异质性的刚度或空间分布无关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d586/11101590/4d4188c07432/10237_2024_1823_Fig1_HTML.jpg

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