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Fabrication and Biocompatibility Evaluation of Nanodiamonds-Gelatin Electrospun Materials Designed for Prospective Tissue Regeneration Applications

机译:纳米金刚石-明胶静电纺丝材料的制备及生物相容性评估可用于预期的组织再生应用。

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摘要

Due to the reduced ability of most harmed tissues to self-regenerate, new strategies are being developed in order to promote self-repair assisted or not by biomaterials, among these tissue engineering (TE). Human adipose-derived mesenchymal stem cells (hASCs) currently represent a promising tool for tissue reconstruction, due to their low immunogenicity, high differentiation potential to multiple cell types and easy harvesting. Gelatin is a natural biocompatible polymer used for regenerative applications, while nanodiamond particles (NDs) are used as reinforcing nanomaterial that might modulate cell behavior, namely cell adhesion, viability, and proliferation. The development of electrospun microfibers loaded with NDs is expected to allow nanomechanical sensing due to local modifications of both nanostructure and stiffness. Two aqueous suspensions with 0.5 and 1% w/v NDs in gelatin from cold water fish skin (FG) were used to generate electrospun meshes. Advanced morpho- and micro-structural characterization revealed homogeneous microfibers. Nanoindentation tests confirmed the reinforcing effect of NDs. Biocompatibility assays showed an increased viability and proliferation profile of hASCs in contact with FG_NDs, correlated with very low cytotoxic effects of the materials. Moreover, hASCs developed an elongated cytoskeleton, suggesting that NDs addition to FG materials encouraged cell adhesion. This study showed the FG_NDs fibrous scaffolds potential for advanced TE applications.
机译:由于最受伤害的组织自我再生的能力降低,因此在这些组织工程学(TE)中,正在开发新的策略以促进生物材料辅助或不辅助生物材料的自我修复。人类脂肪来源的间充质干细胞(hASCs)由于其低的免疫原性,对多种细胞类型的高分化潜能和易于收获,目前代表着一种有希望的组织重建工具。明胶是一种天然的生物相容性聚合物,可用于再生应用,而纳米金刚石颗粒(NDs)被用作增强纳米材料,可调节细胞行为,即细胞粘附,生存能力和增殖。由于纳米结构和刚度的局部改变,预期装载有ND的电纺微纤维的发展将允许纳米机械感测。来自冷水鱼皮(FG)的两种明胶中含有0.5和1%w / v NDs的水悬浮液用于生成电纺网。先进的形态和微观结构表征显示出均质的微纤维。纳米压痕测试证实了ND的增强作用。生物相容性分析显示与FG_NDs接触的hASCs的活力和增殖能力增强,与该材料的细胞毒性极低相关。此外,hASCs形成了细长的细胞骨架,这表明在FG材料中添加ND可以促进细胞粘附。这项研究显示了FG_NDs纤维支架在高级TE应用中的潜力。

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