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首页> 外文期刊>Micro and Nanosystems >Effects of Surface Morphology Variation on the Degradation Rate of Poly(L-Lactic Acid) Membranes and the Behavior of Attached Cells
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Effects of Surface Morphology Variation on the Degradation Rate of Poly(L-Lactic Acid) Membranes and the Behavior of Attached Cells

机译:表面形态变化对聚(L-乳酸)膜降解速率和粘附细胞行为的影响

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摘要

To study the effect of membrane morphology variation on biodegradation and the behavior of adhering cells, three types of poly(L-lactic acid) (PLLA) membranes with different morphologies--particulate, porous, and dense--were prepared. Degradation of the PLLA membranes was performed at 37℃ in hydrogen peroxide solution to accelerate degradation. In addition, these degradation curves were compared with degradation in PBS solution. The estimations of degradation in the two solutions were analyzed by gel permeation chromatography, scanning electron microscopy, and differential scanning calorimetry for 12 and 24 weeks. In addition, cell behavior on the three types of PLLA membrane was also investigated. The results showed that the molecular weight of PLLA membranes dropped gradually during the in vitro degradation period in both hydrogen peroxide and PBS solutions. The surface morphologies of the three types of membrane were observed to differ in the accelerated degradation system, suggesting that morphology affected the crystallinity and resulted in different degradation rates. Adhering cell behavior was also affected by surface morphology, with cells on the particulate membrane displaying the best viability. As the degradation rate of the particulate membrane was the slowest and its biocompatibility was the best, the particulate PLLA membrane may be most suitable for long-term orthopedic implants.
机译:为了研究膜形态变化对生物降解和粘附细胞行为的影响,准备了三种不同形态的聚(L-乳酸)(PLLA)膜-颗粒,多孔和致密-。 PLLA膜的降解是在37℃的过氧化氢溶液中进行的,以加速降解。另外,将这些降解曲线与PBS溶液中的降解进行了比较。通过凝胶渗透色谱,扫描电子显微镜和差示扫描量热法分析这两种溶液在12周和24周内的降解估计。另外,还研究了在三种类型的PLLA膜上的细胞行为。结果表明,在体外降解期间,过氧化氢和PBS溶液中PLLA膜的分子量逐渐降低。观察到三种类型的膜的表面形貌在加速降解系统中有所不同,这表明形貌影响结晶度并导致不同的降解速率。粘附细胞的行为也受表面形态的影响,颗粒膜上的细胞表现出最佳的生存能力。由于颗粒膜的降解速度最慢,生物相容性最好,因此PLLA颗粒膜可能最适合于长期的骨科植入物。

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