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Nanoscale Control of Silks for Nanofibrous Scaffold Formation with Improved Porous Structure

机译:丝绸的纳米级控制以改善多孔结构的纳米纤维支架的形成。

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摘要

Silk-based porous scaffolds have been used extensively in tissue engineering because of their excellent biocompatibility, tunable biodegradability and robust mechanical properties. Although many silk-based scaffolds have been prepared through freeze-drying, a challenge remains to effectively control porous structures during this process. In the present study silk fibroin with different nanostructures were self-assembled in aqueous solution by repeated drying-dissolving process and then used to improve porous structure formation in lyophilization process. Viscosity, secondary structures and water interactions were also studied to exclude their influence on the formation and control of porous structures. Following nanofiber formation in aqueous solution, silk scaffolds with improved porous structure were directly formed after lyophilization and then stabilized with water or methanol annealing treatments. Compared to silk scaffolds derived from fresh solution, the nanofibrous scaffolds showed significantly better cell compatibility in vitro. Therefore, this nanoscale control of silk offers feasible way to regulate the matrix features including porous structure and nanostructure, which are important in regulating cell and tissue outcomes in tissue engineering and regeneration, and then achieve silk-based scaffolds with improved properties.
机译:丝绸基多孔支架因其出色的生物相容性,可调节的生物降解性和强大的机械性能而被广泛用于组织工程。尽管已经通过冷冻干燥制备了许多基于丝绸的支架,但是在此过程中有效控制多孔结构仍然是一个挑战。在本研究中,通过反复干燥-溶解过程将具有不同纳米结构的丝素蛋白在水溶液中自组装,然后用于改善冻干过程中的多孔结构形成。还研究了粘度,二级结构和水的相互作用,以排除它们对多孔结构的形成和控制的影响。在水溶液中形成纳米纤维之后,冻干后直接形成具有改善的多孔结构的丝支架,然后用水或甲醇退火处理使其稳定。与源自新鲜溶液的丝支架相比,纳米纤维支架在体外显示出明显更好的细胞相容性。因此,这种对丝绸的纳米级控制提供了一种可行的方式来调节包括多孔结构和纳米结构在内的基质特征,这对于调节组织工程和再生中的细胞和组织结果非常重要,然后获得具有改进性能的基于丝绸的支架。

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