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In vitro degradation of PHBV scaffolds and nHA/PHBV composite scaffolds containing hydroxyapatite nanoparticles for bone tissue engineering

机译:含羟基磷灰石纳米粒子的PHBV支架和nHA / PHBV复合支架的体外降解,用于骨组织工程

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摘要

This paper investigated the long-term in vitro degradation properties of scaffolds based on biodegradable polymers and osteoconductive bioceramic/polymer composite materials for the application of bone tissue engineering. The three-dimensional porous scaffolds were fabricated using emulsion-freezing/ freeze-drying technique using poly(hydroxybutyrate-co-hydroxyvalerate) (PHBV) which is a natural biodegradable and biocompatible polymer. Nanosized hydroxyapatite (nHA) particles were successfully incorporated into the PHBV scaffolds to render the scaffolds osteoconductive. The PHBV and nHA/PHBV scaffolds were systematically evaluated using various techniques in terms of mechanical strength, porosity, porous morphology, and in vitro degradation. PHBV and nHA/PHBV scaffolds degraded over time in phosphate-buffered saline at 37()C. PHBV polymer scaffolds exhibited slow molecular weight loss and weight loss in the in vitro physiological environment. Accelerated weight loss was observed in nHA incorporated PHBV composite scaffolds. An increasing trend of crystallinity was observed during the initial period of degradation time. The compressive properties decreased more than 40% after 5-month in vitro degradation. Together with interconnected pores, high porosity, suitable mechanical properties, and slow degradation profile obtained from long-term degradation studies, the PHBV scaffolds and osteoconductive nHA/PHBV composite scaffolds showed promises for bone tissue engineering application.
机译:本文研究了基于可生物降解聚合物和骨传导性生物陶瓷/聚合物复合材料的脚手架的长期体外降解特性,并将其应用于骨组织工程。使用乳液-冷冻/冷冻干燥技术,使用天然可生物降解和生物相容性聚合物聚(羟基丁酸酯-共-羟基戊酸酯)(PHBV)制造三维多孔支架。纳米羟基磷灰石(nHA)颗粒已成功整合到PHBV支架中,从而使支架具有骨传导性。使用各种技术对PHBV和nHA / PHBV支架进行了系统评估,包括机械强度,孔隙率,多孔形态和体外降解。 PHBV和nHA / PHBV支架在37°C的磷酸盐缓冲盐水中随时间降解。 PHBV聚合物支架在体外生理环境中表现出缓慢的分子量损失和重量损失。在掺入nHA的PHBV复合支架中观察到体重减轻加快。在降解初期,观察到结晶度的增加趋势。体外降解5个月后,压缩性能下降了40%以上。 PHBV支架和骨传导性nHA / PHBV复合支架与相互连通的孔,高孔隙率,合适的机械性能以及从长期降解研究中获得的缓慢降解曲线相结合,显示出有望用于骨组织工程应用。

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