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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >Engineered 3D printed poly(epsilon-caprolactone)/graphene scaffolds for bone tissue engineering
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Engineered 3D printed poly(epsilon-caprolactone)/graphene scaffolds for bone tissue engineering

机译:用于骨组织工程的工程化3D印刷聚(epsilon-caprolacterone)/石墨烯支架

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摘要

Scaffolds are important physical substrates for cell attachment, proliferation and differentiation. Multiple factors could influence the optimal design of scaffolds for a specific tissue, such as the geometry, the materials used to modulate cell proliferation and differentiation, its biodegradability and biocompatibility. The optimal design of a scaffold for a specific tissue strongly depends on both materials and manufacturing processes. Previous studies of human adipose-derived stem cells (hADSCs) seeded on poly(epsilon-caprolactone) (PCL)/graphene scaffolds have proved that the addition of small concentrations of graphene to PCL scaffolds improves cell proliferation. Based on such results, this paper further investigates, for the first time, both in vitro and in vivo characteristics of 3D printed PCL/graphene scaffolds. Scaffolds were evaluated from morphological, biological and short term immune response points of view. Results show that the produced scaffolds induce an acceptable level of immune response, suggesting high potential for in vivo applications. Finally, the scaffolds were used to treat a rat calvaria critical size defect with and without applying micro electrical stimulation (10 mu A). Quantification of connective and new bone tissue formation and the levels of ALP, RANK, RANKL, OPG were considered. Results show that the use of scaffolds containing graphene and electrical stimulation seems to increase cell migration and cell influx, leading to new tissue formation, well-organized tissue deposition and bone remodelling.
机译:支架是用于细胞附着,增殖和分化的重要物理基质。多种因素可以影响特定组织的脚手架的最佳设计,例如几何形状,用于调节细胞增殖和分化的材料,其生物降解性和生物相容性。特定组织的支架的最佳设计强烈取决于材料和制造过程。已经证明,在聚(ε-己内酯)(PCL)/石墨烯支架上播种的人脂肪衍生的干细胞(HADSCs)的研究证明,将小浓度的石墨烯加入PCL支架上提高了细胞增殖。基于此类结果,本文首次在体外和体内调查3D印刷PCL /石墨烯支架的体外特征。从形态学,生物和短期免疫响应点评估支架。结果表明,所生产的支架诱导可接受的免疫反应水平,表明体内应用的高潜力。最后,支架用于治疗大鼠Calvaria临界大小缺陷,无需施加微电刺激(10μA)。考虑了结缔组织和新骨组织形成的定量和ALP,等级,RANKL,OPG的水平。结果表明,使用含有石墨烯和电刺激的支架似乎增加了细胞迁移和细胞流入,导致新的组织形成,组织良好的组织沉积和骨重塑。

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