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Analysis of transport/reaction processes in biological systems using volume and area averaging methods: Applications in tissue engineering and transdermal drug delivery.

机译:使用体积和面积平均方法分析生物系统中的转运/反应过程:在组织工程和透皮药物输送中的应用。

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Mathematical models are derived to describe the regeneration of cartilage in vitro for tissue engineering applications and iontophoretic drug delivery through the skin utilizing volume and area averaging methods. These multi-phase biological systems were chosen due to their complex geometry, where averaging methods prove most useful in simplifying the modeling process, and to their relevance to current medical applications.; The regeneration of cartilage is a dynamic process where chondrocytes (cartilage cells) are seeded and grown in a polymer scaffold. Four mathematical models have been developed to determine if chondrocyte growth is diffusion-limited by nutrient and product concentrations in the polymer scaffold. All of the models were compared directly or qualitatively to experimental results of cartilage regeneration in variously thick polymers (Freed et al., 1994a). The volume averaging method provided a means of coupling the cell growth equation to the transport equations through effective diffusion and metabolic rate coefficients. The results of this analysis concluded that diffusional limitations on cell growth alone could not account for the cell growth trends shown in the experimental data (Freed et al., 1994a).; Modeling of iontophoretic transport of hydrophilic uncharged molecules through the skin was performed to analyze the relative flow rates through the various pathways of the skin. The system consisted of four compartments: (1) a donor cell, (2) dermal tissue, (3) shunts of the skin, and (4) stratum corneum. The area averaging method was used in simplifying the modeling process for the shunts of the skin. The effects of applied electric field, number of shunts in a skin sample, shunt surface potential, and blood flow rate on the relative flow rates were analyzed. It was concluded that application of an electric field, which increased the electroosmotic, flow in the shunts, increased the variety of hydrophilic uncharged molecules that can pass through the shunts.; The averaging methods used in this dissertation provided a very useful and unique way to analyze transport and reaction in complex biological systems. Both mathematical approaches are not only versatile but also allow for the derivation of effective transport parameters, which can be compared to obtainable experimental data.
机译:推导了数学模型,用于描述组织工程应用中软骨在体外的再生,以及利用体积和面积平均方法通过皮肤进行离子电渗疗法的药物递送。选择这些多相生物系统的原因是它们的几何形状复杂,平均方法被证明对简化建模过程最有用,并且与当前医学应用相关。软骨的再生是一个动态过程,其中软骨细胞(软骨细胞)在聚合物支架中播种并生长。已经开发了四个数学模型来确定软骨细胞的生长是否受到聚合物支架中营养物和产物浓度的扩散限制。所有模型都直接或定性地与各种厚度的聚合物中软骨再生的实验结果进行了比较(Freed等,1994a)。体积平均法提供了一种通过有效扩散和代谢速率系数将细胞生长方程与运输方程耦合的方法。该分析的结果得出结论,仅细胞生长的扩散限制不能解释实验数据中显示的细胞生长趋势(Freed等,1994a)。进行亲水性不带电分子通过皮肤的离子电渗转运模型,以分析通过皮肤各种途径的相对流速。该系统由四个部分组成:(1)供体细胞,(2)皮肤组织,(3)皮肤分流和(4)角质层。面积平均法用于简化皮肤分流器的建模过程。分析了施加电场,皮肤样品中分流器的数量,分流器表面电势和血液流速对相对流速的影响。结论是,电场的应用增加了分流器中的电渗流,增加了可以通过分流器的亲水性不带电分子的种类。本文采用的平均方法为分析复杂生物系统中的转运和反应提供了一种非常有用且独特的方法。两种数学方法不仅通用,而且允许推导有效的传输参数,可以将其与可获得的实验数据进行比较。

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