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Tunable hybrid cryogels functionalized with microparticles as supermacroporous multifunctional biomaterial scaffolds

机译:可调谐混合冷冻凝胶,其功能化为超大型多功能生物材料支架的微粒

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摘要

This study aims at incorporating microparticles (MPs) into polymeric network of cryogels to fabricate a multifunctional biomaterial scaffold (cryogel-microparticle [C-MP] composite) which has microstructured biocompatible pore surface, supermacroporous interconnected pore distribution and capability to simultaneously deliver bioactive molecules. Three types of MPs (i.e. poly(D,L-lactide-co-glycolide), chitosan, and silica MPs) were separately incorporated in three different cryogels (i.e. chitosan-agarose, chitosan-agarose-gelatin, and chitosan-gelatin), demonstrating the generality of the approach. Factors affecting distribution of MPs within the cryogel were investigated to achieve uniform distribution of MPs within the pore wall of cryogel as well as the whole cryogel monolith to create microstructured pore surface of C-MP composites, which was characterized by scanning electron microscopy, fluorescence microscopy, infrared spectral analysis (FTIR), and water uptake properties. Further, mouse embryonic fibroblasts (NIH 3T3), mouse myoblasts (C2C12), and human lung cancer cells (NCI-H460) were grown on microstructured C-MP composites and nonstructured cryogels to check adherence and growth of cells, and investigate their biocompatibility. To test the potential of C-MP composites for delivery of bioactive/drug molecules to cells growing in three-dimensional (3D) conditions, doxorubicin-loaded silica MP-chitosan-gelatin C-MP composites were fabricated and anti-proliferative effect of doxorubicin was observed on growing human cervical cancer cells (HeLa).
机译:这项研究旨在将微粒(MPs)纳入冷冻凝胶的聚合物网络中,以制造多功能生物材料支架(冰凝胶-微粒[C-MP]复合材料),该支架具有微结构化的生物相容性孔表面,超大的互连孔分布以及同时传递生物活性分子的能力。将三种类型的MP(即聚(D,L-丙交酯-乙交酯共聚乙交酯),壳聚糖和二氧化硅MP)分别掺入三种不同的冰凝胶中(即,壳聚糖-琼脂糖,壳聚糖-琼脂糖-明胶和壳聚糖-明胶),展示了该方法的一般性。研究了影响MP在冷冻凝胶中分布的因素,以实现MP在冷冻凝胶孔壁以及整个冻凝胶整料中的均匀分布,从而形成了C-MP复合材料的微结构孔表面,通过扫描电子显微镜,荧光显微镜对其进行了表征。 ,红外光谱分析(FTIR)和吸水特性。此外,将小鼠胚胎成纤维细胞(NIH 3T3),小鼠成肌细胞(C2C12)和人肺癌细胞(NCI-H460)在微结构化C-MP复合材料和非结构化冰晶上生长,以检查细胞的粘附和生长,并研究其生物相容性。为了测试C-MP复合材料将生物活性/药物分子传递到在三维(3D)条件下生长的细胞中的潜力,制备了负载阿霉素的二氧化硅MP-壳聚糖-明胶C-MP复合材料,并研究了阿霉素的抗增殖作用在正在生长的人类宫颈癌细胞(HeLa)上观察到这种现象。

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