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Microfluidic Fabrication of Self-Assembled Peptide-Polysaccharide Microcapsules as 3D Environments for Cell Culture

机译:自组装的多肽-多糖微胶囊的微流体制备作为细胞培养的3D环境

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摘要

We report a mild cell encapsulation method based on self-assembly and microfluidics technology. Xanthan gum, an anionic polysaccharide, was used to trigger the self-assembly of a positively charged multidomain peptide. The self-assembly resulted in the formation of a nanofibrous matrix and using a microfluidic device, microcapsules with homogeneous size were fabricated. The properties and performance of xanthan-peptide microcapsules were optimized by changing peptide/polysaccharide ratio and their effects on the microcapsule permeability and mechanical stability were analyzed. The effect of microcapsule formulation on viability and proliferation of encapsulated chondrocytic (ATDCS) cells was also investigated. The encapsulated cells were metabolically active, showing an increased viability and proliferation over 21 days of in vitro culture, demonstrating the long-term stability of the self-assembled microcapsules and their ability to support and enhance the survival of encapsulated cells over a prolonged time. Self-assembling materials combined with microfluidics demonstrated to be an innovative approach in the fabrication of cytocompatible matrix for cell microencapsulation and delivery.
机译:我们报告基于自组装和微流控技术的温和的细胞封装方法。黄原胶,一种阴离子多糖,用于触发带正电荷的多结构域肽的自组装。自组装导致形成纳米纤维基质,并且使用微流体装置,制备了具有均一尺寸的微胶囊。通过改变肽/多糖比优化黄原肽微囊的性能和性能,并分析了它们对微囊通透性和机械稳定性的影响。还研究了微胶囊制剂对封装的软骨细胞(ATDCS)的活力和增殖的影响。包封的细胞具有代谢活性,在体外培养21天后显示出更高的生存力和增殖能力,证明了自组装微胶囊的长期稳定性以及它们在较长时间内支持和增强包封细胞存活的能力。自组装材料与微流控技术相结合是一种用于细胞微囊化和递送的细胞相容性基质制造的创新方法。

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