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A design protocol for tailoring ice-templated scaffold structure

机译:剪裁冰模板支架结构的设计方案

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In this paper, we show, for the first time, the key link between scaffold architecture and latent heat evolution during the production of porous biomedical collagen structures using freeze-drying. Collagen scaffolds are used widely in the biomedical industry for the repair and reconstruction of skeletal tissues and organs. Freeze-drying of collagen slurries is a standard industrial process, and, until now, the literature has sought to characterize the influence of set processing parameters including the freezing protocol and weight percentage of collagen. However, we are able to demonstrate, by monitoring the local thermal events within the slurry during solidification, that nucleation, growth and annealing processes can be controlled, and therefore we are able to control the resulting scaffold architecture. Based on our correlation of thermal profile measurements with scaffold architecture, we hypothesize that there is a link between the fundamental freezing of ice and the structure of scaffolds, which suggests that this concept is applicable not only for collagen but also for ceramics and pharmaceuticals. We present a design protocol of strategies for tailoring the ice-templated scaffold structure.
机译:在本文中,我们首次展示了使用冷冻干燥法生产多孔生物医学胶原蛋白结构时,支架结构与潜热演化之间的关键联系。胶原蛋白支架在生物医学工业中广泛用于修复和重建骨骼组织和器官。胶原浆的冷冻干燥是标准的工业过程,并且迄今为止,文献一直试图表征设定的加工参数(包括冷冻方案和胶原的重量百分比)的影响。但是,通过监测凝固过程中浆料中的局部热事件,我们能够证明可以控制成核,生长和退火过程,因此,我们能够控制所得的支架结构。根据我们的热剖面测量结果与支架结构的相关性,我们假设冰的基本冻结与支架结构之间存在联系,这表明该概念不仅适用于胶原蛋白,而且适用于陶瓷和药品。我们提出了一种策略设计协议,用于剪裁以冰为模板的脚手架结构。

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