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用于原子力显微镜压痕和微管吸吮中软骨细胞生物力学的连续统-张拉整体计算模型。

A Continuum-Tensegrity Computational Model for Chondrocyte Biomechanics in AFM Indentation and Micropipette Aspiration.

机构信息

Department of Civil, Environmental and Architectural Engineering, University of Padova, Padua, Italy.

Department of Biomedical Sciences, University of Padova, Padua, Italy.

出版信息

Ann Biomed Eng. 2022 Dec;50(12):1911-1922. doi: 10.1007/s10439-022-03011-1. Epub 2022 Jul 25.

Abstract

Mechanical stimuli are fundamental in the development of organs and tissues, their growth, regeneration or disease. They influence the biochemical signals produced by the cells, and, consequently, the development and spreading of a disease. Moreover, tumour cells are usually characterized by a decrease in the cell mechanical properties that may be directly linked to their metastatic potential. Thus, recently, the experimental and computational study of cell biomechanics is facing a growing interest. Various experimental approaches have been implemented to describe the passive response of cells; however, cell variability and complex experimental procedures may affect the obtained mechanical properties. For this reason, in-silico computational models have been developed through the years, to overcome such limitations, while proposing valuable tools to understand cell mechanical behaviour. This being the case, we propose a combined continuous-tensegrity finite element (FE) model to analyse the mechanical response of a cell and its subcomponents, observing how every part contributes to the overall mechanical behaviour. We modelled both Atomic Force Microscopy (AFM) indentation and micropipette aspiration techniques, as common mechanical tests for cells and elucidated also the role of cell cytoplasm and cytoskeleton in the global cell mechanical response.

摘要

机械刺激在器官和组织的发育、生长、再生或疾病中起着基础作用。它们影响细胞产生的生化信号,从而影响疾病的发展和扩散。此外,肿瘤细胞的细胞力学特性通常会降低,这可能与其转移潜能直接相关。因此,最近,细胞生物力学的实验和计算研究受到了越来越多的关注。已经实施了各种实验方法来描述细胞的被动响应;然而,细胞的可变性和复杂的实验程序可能会影响获得的力学性能。出于这个原因,多年来已经开发了基于计算机的计算模型,以克服这些限制,同时提出有价值的工具来理解细胞的力学行为。基于此,我们提出了一种组合的连续张拉整体有限元(FE)模型,以分析细胞及其亚组件的力学响应,观察每个部分如何对整体力学行为做出贡献。我们对原子力显微镜(AFM)压痕和微管吸吮技术进行了建模,这两种技术都是用于细胞的常见力学测试,并阐明了细胞质和细胞骨架在整体细胞力学响应中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4052/9794536/97c96fa1338f/10439_2022_3011_Fig3_HTML.jpg

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