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聚乙交酯丙交酯缝线体外水解和酶解降解的纳米力学研究

Nano-Mechanical Studies on Polyglactin Sutures Subjected to In Vitro Hydrolytic and Enzymatic Degradation.

作者信息

Sun Leming, Wanasekara Nandula, Chalivendra Vijaya, Calvert Paul

出版信息

J Nanosci Nanotechnol. 2015 Jan;15(1):93-9. doi: 10.1166/jnn.2015.9073.

Abstract

An experimental investigation on the effects of in vitro hydrolytic and enzymatic degradation on mechanical properties of polyglactin 910 monofilament sutures was performed by conducting nanoindentation studies using an atomic force microscope (AFM). For hydrolytic degradation, the sutures were incubated in phosphate buffered saline (PBS) solution at three different pH conditions, 5, 7.4, and 10. For enzymatic degradation, esterase was employed at pH condition of 7.4. The property of the sutures changed with time at different conditions were investigated by nanoindentation, tensile test experiments, image analysis using both of scanning electron microscopy (SEM) and AFM, and also Fourier transform infrared spectroscopy (FTIR). The effects of degradation on gradation of Young's modulus values across the cross section of the sutures were studied by doing progressive nanoindentation from center to surface. FTIR studies revealed the formation of new hydroxyl bonds due to both hydrolytic and enzymatic degradations. Nanoindentation results indicated that the degradation does not cause a gradient of Young's modulus of the polyglactin 910 monofilament sutures across the cross section from center to surface at different degradation times for both hydrolytic and enzymatic degradations. However, in general, the Young's modulus of all samples was decreased over 4 weeks of degradation. The microscopic evaluation of the samples also showed both qualitative changes in surface morphology and quantitative changes in surface roughness on the surface of degraded sutures. This study provided a deep understanding of the polyglactin sutures subjected to in vitro hydrolytic and enzymatic degradation, and also opened a new avenue to study the biomaterials at nano-scale.

摘要

通过使用原子力显微镜(AFM)进行纳米压痕研究,对体外水解和酶降解对聚乙醇酸910单丝缝线力学性能的影响进行了实验研究。对于水解降解,将缝线在三种不同pH条件(5、7.4和10)的磷酸盐缓冲盐水(PBS)溶液中孵育。对于酶降解,在pH为7.4的条件下使用酯酶。通过纳米压痕、拉伸试验、使用扫描电子显微镜(SEM)和AFM的图像分析以及傅里叶变换红外光谱(FTIR)研究了缝线在不同条件下随时间变化的性能。通过从中心到表面进行渐进式纳米压痕研究了降解对缝线横截面杨氏模量值梯度的影响。FTIR研究表明,水解和酶降解均导致新的羟基键形成。纳米压痕结果表明,对于水解和酶降解,在不同降解时间下,降解不会导致聚乙醇酸910单丝缝线从中心到表面的横截面杨氏模量出现梯度。然而,总体而言,所有样品的杨氏模量在降解4周后均下降。对样品的微观评估还显示了降解缝线表面形态的定性变化和表面粗糙度的定量变化。本研究深入了解了聚乙醇酸缝线的体外水解和酶降解情况,也为在纳米尺度上研究生物材料开辟了新途径。

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