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利用张拉整体结构分析贴壁细胞对基质硬度的响应

Analysis of the Adherent Cell Response to the Substrate Stiffness Using Tensegrity.

机构信息

Sahand University of Technology, Sahand New Town, Tabriz, East Azerbaijan, Iran.

Isfahan University of Medical Sciences, Isfahan, Iran.

出版信息

Ann Biomed Eng. 2024 May;52(5):1213-1221. doi: 10.1007/s10439-024-03447-7. Epub 2024 Feb 7.

DOI:10.1007/s10439-024-03447-7
PMID:38324074
Abstract

Cell's shape is dependent on the cytoskeleton mechanical properties. Hybrid models were developed that combine the discrete structure for the cytoskeleton and continuum parts for other cell organelles. Tensegrity-based structures that consist of tensile and compression elements are useful models to understand the cytoskeleton mechanical behavior. In this study, we are looking to examine the reaction of the cell to a variety of substrate stiffnesses and explain the relationship between cell behavior and substrate mechanical properties. However, which tensegrity structure is appropriate for modeling a living cell? Is the structure's complexity play a major role? We used two spherical tensegrities with different complexities to assess the impact of the structure on the cell's mechanical response versus substrate's stiffness. Six- and twelve-strut tensegrities together with membrane, cytoplasm, nucleoskeleton, and nucleus envelope were assembled in Abaqus package to create a hybrid cell model. A compressive load was applied to the cell model and the reaction forces versus deflection curves were analyzed for number of substrate stiffness values. By analyzing the difference due to two different tensegrities it became clear that the lower density structure is a better choice for modeling stiffer cells. It was also found that the six-strut tensegrity is sensitive to higher range of substrate stiffness.

摘要

细胞的形状取决于细胞骨架的力学性质。已经开发出了混合模型,将细胞骨架的离散结构与其他细胞细胞器的连续部分结合在一起。由拉伸和压缩元件组成的基于 tensegrity 的结构是理解细胞骨架力学行为的有用模型。在这项研究中,我们希望研究细胞对各种基质刚度的反应,并解释细胞行为和基质力学性质之间的关系。然而,哪种 tensegrity 结构适合对活细胞进行建模?结构的复杂性是否起主要作用?我们使用了两种具有不同复杂性的球形 tensegrity 来评估结构对细胞力学响应与基质刚度的影响。六杆和十二杆 tensegrity 与膜、细胞质、核骨架和核包膜一起在 Abaqus 包中组装,以创建混合细胞模型。对细胞模型施加压缩载荷,并分析了多个基质刚度值下的反作用力与挠度曲线。通过分析两个不同 tensegrity 的差异,很明显,密度较低的结构是对较硬细胞进行建模的更好选择。还发现六杆 tensegrity 对较高范围的基质刚度敏感。

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Determination of strain-rate-dependent mechanical behavior of living and fixed osteocytes and chondrocytes using atomic force microscopy and inverse finite element analysis.使用原子力显微镜和逆有限元分析确定活的和固定的骨细胞与软骨细胞的应变率依赖性力学行为。
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Tensegrity I. Cell structure and hierarchical systems biology.张拉整体结构I. 细胞结构与层次系统生物学
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