首页> 外文期刊>ACS applied materials & interfaces >Versatile Wedge-Based System for the Construction of Unidirectional Collagen Scaffolds by Directional Freezing: Practical and Theoretical Considerations
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Versatile Wedge-Based System for the Construction of Unidirectional Collagen Scaffolds by Directional Freezing: Practical and Theoretical Considerations

机译:基于多功能楔形的定向冻结单向胶原蛋白支架构建系统:实践和理论考虑

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Aligned unidirectional collagen scaffolds may aid regeneration of those tissues where alignment of cells and extracellular matrix is essential, as for instance in cartilage, nerve bundles, and skeletal muscle. Pores can be introduced by ice crystal formation followed by freeze-drying, the pore architecture reflecting the ice crystal morphology. In this study we developed a wedge-based system allowing the production of a wide range of collagen scaffolds with unidirectional pores by directional freezing. Insoluble type I collagen suspensions were frozen using a custom-made wedge system, facilitating the formation of a horizontal as well as a vertical temperature gradient and providing a controlled solidification are for ice dendrites. The system permitted the growth of aligned unidirectional ice crystals over a large distance (>2.5 cm), an insulator prolonging the freezing process and facilitating the construction of crack-free scaffolds. Unidirectional collagen scaffolds with tunable pore sizes and pore morphologies were constructed by varying freezing rates and suspension media. The versatility of the system was indicated by the construction of unidirectional scaffolds from albumin, poly(vinyl alcohol) (a synthetic polymer), and collagen-polymer blends producing hybrid scaffolds. Macroscopic observations, temperature measurements, and scanning electron microscopy indicated that directed horizontal ice dendrite formation, vertical ice crystal nucleation, and evolutionary selection were the basis of the aligned unidirectional ice crystal growth and, hence, the aligned unidirectional pore structure. In conclusion, a simple, highly adjustable freezing system has been developed allowing the construction of large (hybrid) bioscaffolds with tunable unidirectional pore architecture.
机译:对齐的单向胶原蛋白支架可以帮助那些必须对齐细胞和细胞外基质的组织再生,例如在软骨,神经束和骨骼肌中。可以通过形成冰晶,然后进行冷冻干燥来引入毛孔,其孔结构反映了冰晶的形态。在这项研究中,我们开发了一种基于楔子的系统,该系统可以通过定向冷冻生产各种具有单向孔的胶原蛋白支架。使用定制的楔形系统将不溶性I型胶原蛋白悬浮液冷冻,有助于形成水平和垂直温度梯度,并为冰晶提供受控的固化。该系统可以使定向的单向冰晶在很长的距离(> 2.5厘米)内生长,绝缘子可以延长冷冻过程,并有助于建造无裂纹的脚手架。通过改变冷冻速率和悬浮介质,构建具有可调孔径和孔形貌的单向胶原蛋白支架。该系统的多功能性由白蛋白,聚乙烯醇(一种合成聚合物)和胶原-聚合物共混物的单向支架构建而成,从而产生了混合支架。宏观观察,温度测量和扫描电子显微镜表明,定向的水平冰枝晶形成,垂直的冰晶成核和演化选择是排列的单向冰晶生长的基础,因此是排列的单向孔结构的基础。总之,已经开发了一种简单的,高度可调节的冷冻系统,可以构建具有可调单向孔结构的大型(混合型)生物支架。

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