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首页> 外文期刊>Acta biomaterialia >Long-term in vitro degradation of PDLLA/bioglass bone scaffolds in acellular simulated body fluid.
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Long-term in vitro degradation of PDLLA/bioglass bone scaffolds in acellular simulated body fluid.

机译:PDLLA /生物玻璃骨支架在脱细胞模拟体液中的长期体外降解。

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摘要

The long-term (600days) in vitro degradation of highly porous poly(D,L-lactide) (PDLLA)/Bioglass-filled composite foams developed for bone tissue engineering scaffolds has been investigated in simulated body fluid (SBF). Foams of approximately 93% porosity were produced by thermally induced phase separation (TIPS). The degradation profile for foams of neat PDLLA and the influence of Bioglass addition were comprehensively assessed in terms of changes in dimensional stability, pore morphology, weight loss, molecular weight and mechanical properties (dry and wet states). It is shown that the degradation process proceeded in several stages: (a) a quasi-stable stage, where water absorption and plasticization occurred together with weight loss due to Bioglass particle loss and dissolution, resulting in decreased wet mechanical properties; (b) a stage showing a slight increase in the wet mechanical properties and a moderate decrease in dimensions, with the properties remaining moderately constant until the onset of significant weight loss, whilst molecular weight continued to decrease; (c) an end stage of massive weight loss, disruption of the pore structure and the formation of blisters and embrittlement of the scaffold (evident on handling). The findings from this long-term in vitro degradation investigation underpin studies that have been and continue to be performed on highly porous poly(alpha-hydroxyesters) scaffolds filled with bioactive glasses for bone tissue engineering applications.
机译:已在模拟体液(SBF)中研究了为骨组织工程支架开发的高度多孔聚(D,L-丙交酯)(PDLLA)/生物玻璃填充复合泡沫的长期(600天)体外降解。通过热诱导相分离(TIPS)产生了约93%孔隙率的泡沫。根据尺寸稳定性,孔形态,重量损失,分子量和机械性能(干态和湿态)的变化,全面评估了纯PDLLA泡沫的降解曲线和生物玻璃添加的影响。结果表明,降解过程分为几个阶段:(a)准稳定阶段,由于生物玻璃颗粒的损失和溶解,吸水和增塑同时发生重量损失,导致湿机械性能下降; (b)显示出湿机械性能略微增加而尺寸适度减小的阶段,该性能保持适度恒定,直到开始显着减重,而分子量继续降低; (c)体重大量减少,孔结构破坏,水泡形成和支架脆化的最后阶段(在处理时明显)。这项长期的体外降解研究的结果为已经并且将继续对填充有生物活性玻璃的高度多孔的聚(α-羟基酯)支架进行的研究进行了研究,这些支架用于骨组织工程应用。

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