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首页> 外文期刊>Communications in Numerical Methods in Engineering >Computational model of matrix remodeling and entrenchment in the free-floating fibroblast-populated collagen lattice
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Computational model of matrix remodeling and entrenchment in the free-floating fibroblast-populated collagen lattice

机译:自由漂浮的成纤维细胞组成的胶原蛋白晶格中基质重塑和固结的计算模型

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摘要

Tissue equivalents represent excellent model systems for elucidating principles of mechanobiology and for exploring methods to improve the functionality of tissue-engineered constructs. The simplest tissue equivalent is the free-floating fibroblast-populated collagen lattice. Although introduced over 30 years ago, the associated mechanics of the cell-mediated compaction of this lattice was only recently analyzed in detail. The goal of this paper was to build on this recent stress analysis by developing a computational model of the evolving geometry, regionally varying material properties and cell stresses, and overall residual stress fields during the first two days of compaction. Baseline results were found to agree well with most experimental observations, namely evolving changes in radius, thickness, and material symmetry, yet hypothesis testing revealed aspects of the mechanobiology that require more experimental attention. Given the generality of the proposed framework, we submit that modifications and refinements can be used to study many similar systems and thereby help guide future experiments.
机译:组织等效物代表了出色的模型系统,用于阐明力学生物学原理和探索改善组织工程构造功能的方法。最简单的组织等效物是自由漂浮的成纤维细胞组成的胶原蛋白晶格。尽管是在30多年前引入的,但直到最近才详细分析这种晶格的细胞介导压实的相关机理。本文的目的是在最近的应力分析的基础上,通过发展在压实的前两天中不断变化的几何形状,区域变化的材料特性和单元应力以及整体残余应力场的计算模型。发现基线结果与大多数实验观察结果非常吻合,即半径,厚度和材料对称性的变化不断变化,但是假设检验揭示了力学生物学方面需要更多实验关注的方面。考虑到所提出框架的一般性,我们认为可以进行修改和完善来研究许多类似的系统,从而有助于指导未来的实验。

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