首页> 外文期刊>Journal of Mechanics in Medicine and Biology >TRANSDUCTION OF STRAIN TO CELLS SEEDED ONTO SCAFFOLDS EXPOSED TO UNIAXIAL STRETCHING: A THREE DIMENSIONAL FINITE ELEMENT STUDY
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TRANSDUCTION OF STRAIN TO CELLS SEEDED ONTO SCAFFOLDS EXPOSED TO UNIAXIAL STRETCHING: A THREE DIMENSIONAL FINITE ELEMENT STUDY

机译:应变转化为单轴拉伸的脚手架上种下的细胞:三维有限元研究

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摘要

When preparing tissue engineering and regenerative medicine constructs, a commonly encountered problem is the failure of seeded cells to infiltrate the scaffold. In an increasing number of cases, constructs are being mechanically preconditioned with the expectation that preconditioning will enhance the construct's maturation and effectiveness by pre-exposing seeded cells to stimuli the tissue of interest experiences in vivo. However, whether or not mechanostimulation of a scaffold actually results in transmission of stimuli to the seeded cells remains poorly understood. The purpose of this research was to develop a model that quantifies how strain is transmitted to cells layered on a scaffold's surface compared to cells embedded within a scaffold. Three-dimensional finite element models representative of these conditions were created. When 10% strain was applied to the construct, embedded cells received the full imposed strain. However, cells growing on top of the scaffold received 5% strain within the first layer of cells, and the strain transmitted to cells in subsequent layers decreased exponentially with increasing distance from the scaffold's surface. When experimentally testing the model, strain-induced biological responses were muted in conditions where cell to scaffold contact was reduced. This research illustrates the importance of achieving cellular penetration and cell-to-scaffold contacts when mechanically conditioning tissue engineering constructs.
机译:当制备组织工程和再生医学构建体时,通常遇到的问题是种子细胞不能渗入支架。在越来越多的情况下,对构建物进行机械预处理,以期通过将种子细胞预先暴露在体内刺激感兴趣的组织来增强构建物的成熟度和有效性。然而,对支架的机械刺激实际上是否导致刺激传递到种子细胞仍然知之甚少。这项研究的目的是开发一种模型,该模型与嵌入支架中的细胞相比,可以量化应变如何传递到支架表面上的分层细胞。创建了代表这些条件的三维有限元模型。当对构建体施加10%的应变时,嵌入的细胞将承受全部施加的应变。但是,生长在支架顶部的细胞在第一层细胞中受到5%的应变,并且传递到后续层中的细胞的应变随着与支架表面距离的增加呈指数下降。当通过实验测试模型时,在细胞与支架接触减少的情况下,菌株诱导的生物学反应被静音。这项研究表明,在机械调节组织工程结构时,实现细胞渗透和细胞与支架的接触非常重要。

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