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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Design and assessment of a microfluidic network system for oxygen transport in engineered tissue
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Design and assessment of a microfluidic network system for oxygen transport in engineered tissue

机译:用于工程组织中氧气输送的微流网络系统的设计和评估

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Oxygen and nutrients cannot be delivered to cells residing in the interior of large-volume scaffolds via diffusion alone. Several efforts have been made to meet the metabolic needs of cells in a scaffold by constructing mass transport channels, particularly in the form of bifurcated networks. In contrast to progress in fabrication technologies, however, an approach to designing an optimal network based on experimental evaluation has not been actively reported. The main objective of this study was to establish a procedure for designing an effective microfluidic network system for a cell-seeded scaffold and to develop an experimental model to evaluate the design. We proposed a process to design a microfluidic network by combining an oxygen transport simulation with biomimetic principles governing biological vascular trees. The simulation was performed with the effective diffusion coefficient (D_(e,s)), which was experimentally measured in our previous study. Porous scaffolds containing an embedded microfluidic network were fabricated using the lost mold shape-forming process and salt leaching method. The reliability of the procedure was demonstrated by experiments using the scaffolds. This approach established a practical basis for designing an effective microfluidic network in a cell-seeded scaffold.
机译:氧气和营养物质不能仅通过扩散传递到大体积支架内部的细胞中。为了构建支架中细胞的代谢需求,已经做出了一些努力,特别是通过建立分叉网络的形式来构建大规模运输通道。但是,与制造技术的进步相反,尚未积极报道基于实验评估来设计最佳网络的方法。这项研究的主要目的是建立一种程序,用于设计一种有效的细胞接种支架的微流体网络系统,并开发一个实验模型来评估设计。我们提出了一种通过结合氧迁移模拟与控制生物血管树的仿生原理来设计微流控网络的过程。使用有效扩散系数(D_(e,s))进行了模拟,该有效扩散系数是在我们先前的研究中通过实验测量的。使用模具的失形成型和盐浸法制备了包含嵌入式微流体网络的多孔支架。通过使用支架的实验证明了该程序的可靠性。该方法为在细胞接种支架中设计有效的微流体网络奠定了实践基础。

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