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A TRIPHASIC CONSTRAINED MIXTURE MODEL OF ENGINEERED TISSUE FORMATION UNDER IN-VITRO DYNAMIC MECHANICAL CONDITIONING

机译:体外动态力学条件下工程组织形成的三重约束混合模型

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摘要

While it has become axiomatic that mechanical signals promotes in-vitro engineered tissue formation, the underlying mechanisms remain largely unknown. Moreover, efforts to date to determine parameters for optimal extracellular matrix (ECM) development have been largely empirical. In the present work, we propose a two-pronged approach involving novel theoretical developments coupled with key experimental data to develop better mechanistic understanding of growth and development of dense connective tissue under mechanical stimuli. To describe cellular proliferation and ECM synthesis that occur at rates of days to weeks, we employ mixture theory to model the construct constituents as a nutrient-cell-ECM triphasic system, their transport, and their biochemical reactions. Dynamic conditioning protocols with frequencies around 1 Hz are described with multi-scale methods to couple the dissimilar time scales. Enhancement of nutrient transport due to pore fluid advection is up-scaled into the growth model, and the spatially dependent ECM distribution describes the evolving poroelastic characteristics of the scaffold-engineered tissue construct. Simulation results compared favorably to the existing experimental data, and most importantly, distinguish between static and dynamic conditioning regimes. The theoretical framework for mechanically conditioned tissue engineering (TE) permits not only the formulation of novel and better-informed mechanistic hypothesis describing the phenomena underlying TE growth and development, but also the exploration/optimization of conditioning protocols in a rational manner.
机译:虽然机械信号促进体外工程组织的形成已是不言自明的,但其基本机制仍是未知之数。此外,迄今为止为确定最佳细胞外基质(ECM)发育的参数所做的努力在很大程度上是凭经验进行的。在目前的工作中,我们提出了两方面的方法,其中涉及新颖的理论发展以及关键的实验数据,以便在机械刺激下更好地理解致密结缔组织的生长和发展。为了描述以几天到几周的速度发生的细胞增殖和ECM合成,我们采用混合理论对作为营养细胞ECM三相系统的结构成分,其运输及其生化反应进行建模。用多尺度方法描述了频率约为1 Hz的动态调节协议,以耦合不同的时间尺度。由于孔隙流体对流而导致的养分转运增强在生长模型中得到了放大,并且空间依赖性的ECM分布描述了支架工程组织构建体不断发展的多孔弹性特征。仿真结果优于现有的实验数据,最重要的是,可以区分静态和动态条件。机械条件组织工程(TE)的理论框架不仅允许描述描述TE生长和发育现象的新颖且消息灵通的机械假设,而且还可以合理方式探索/优化条件方案。

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