Poly(∊-Caprolactone) Reinforced with Sol-Gel Synthesized Organic-Inorganic Hybrid Fillers as Composite Substrates for Tissue Engineering

T. Russo, A. Gloria, V. D’antò, U. D'Amora, G. Ametrano, F. Bollino, R. De Santis, G. Ausanio, M. Catauro, S. Rengo, L. Ambrosio
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引用次数: 54

Abstract

Purpose The importance of polymer-based composite materials to make multifunctional substrates for tissue engineering and the strategies to improve their performances have been stressed in the literature. Bioactive features of sol-gel synthesized poly(∊-caprolactone)/TiO2 or poly(∊-caprolactone)/ZrO2 organic-inorganic hybrid materials are widely documented. Accordingly, the aim of this preliminary research was to develop advanced composite substrates consisting of a poly(∊-caprolactone) matrix reinforced with sol-gel synthesized PCL/TiO2 or PCL/ZrO2 hybrid fillers. Methods Micro-computed tomography and atomic force microscopy analyses allowed to study surface topography and roughness. On the other hand, mechanical and biological performances were evaluated by small punch tests and Alamar Blue™ assay, respectively. Results Micro-computed tomography and atomic force microscopy analyses highlighted the effect of the preparation technique. Results from small punch tests and Alamar Blue™ assay evidenced that PCL reinforced with Ti2 (PCL=12, TiO2=88 wt%) and Zr2 (PCL=12, ZrO2=88 wt%) hybrid fillers provided better mechanical and biological performances. Conclusions PCL reinforced with Ti2 (PCL=12, TiO2=88 wt%) and Zr2 (PCL=12, ZrO2=88 wt%) hybrid fillers could be considered as advanced composite substrates for hard tissue engineering.
溶胶-凝胶合成有机-无机杂化填料增强聚()-己内酯作为组织工程复合基质
目的综述了聚合物基复合材料在组织工程中作为多功能基质的重要性及提高其性能的方法。溶胶-凝胶合成的聚(-己内酯)/TiO2或聚(-己内酯)/ZrO2有机-无机杂化材料的生物活性特性被广泛报道。因此,本初步研究的目的是开发由溶胶-凝胶合成的PCL/TiO2或PCL/ZrO2杂化填料增强的聚(-己内酯)基质组成的先进复合衬底。方法采用显微计算机断层扫描和原子力显微镜分析方法研究表面形貌和粗糙度。另一方面,分别通过小冲孔试验和Alamar Blue™试验评估其机械性能和生物学性能。结果显微计算机断层扫描和原子力显微镜分析突出了制备工艺的效果。小冲孔试验和Alamar Blue™试验结果表明,Ti2 (PCL=12, TiO2=88 wt%)和Zr2 (PCL=12, ZrO2=88 wt%)混合填料增强的PCL具有更好的机械和生物性能。结论Ti2 (PCL=12, TiO2=88 wt%)和Zr2 (PCL=12, ZrO2=88 wt%)复合填料增强PCL可作为硬组织工程中先进的复合基质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Applied Biomaterials & Biomechanics
Journal of Applied Biomaterials & Biomechanics 生物-材料科学:生物材料
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