生物基羟基磷灰石灌注聚己内酯纤维在生物医学上的应用

D. Kodali, Vincent Hembrick-Holloman, S. Jeelani, V. Rangari
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摘要

采用强力纺丝技术,将聚己内酯(PCL)注入生物基羟基磷灰石(HA)制备微纤维。本研究的目的是分析培养纤维的热力学性能,以及细胞粘附和增殖分析。透明质酸是由鱼科鱼鳞干燥而成的。鱼鳞在800°C箱式炉中煅烧,并在纳米搅拌器磨粉机中磨粉1小时以减小粒径。通过XRD、SEM和TEM对纳米颗粒的粒径、结晶度和结构进行了表征。将16wt %的PCL溶解在氯仿中形成PCL溶液,以170 rpm磁力搅拌3小时。将HA纳米粒子按1、2、3 wt%的比例注入该溶液中,在真空混合器中搅拌7分钟,使纳米粒子在溶液中均匀分散。将混合溶液注入强力纺丝装置的喷丝孔中。收集PCL/HA纤维,转速为7000 rpm,旋转时间为10min。通过拉伸试验、DSC和DMA分析分析了纤维的热机械性能。纤维的生物学评估是通过体外细胞研究从纤维上切割下来的支架来完成的。这些支架可以进一步用于各种生物医学应用,如缝合线和控制伤口愈合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of Forcespun Polycaprolactone Fibers Infused with Bio-Based Hydroxyapatite for Biomedical Applications
A novel Force spinning technique was used to fabricate microfibers from polycaprolactone (PCL) infused with bio-based hydroxyapatite (HA). The aim of this study is to analyze the thermo-mechanical properties of the developed fibers in addition to cell adhesion and proliferation analysis. The HA is synthesized from sundried raw fish scales of carpa family. The fish scales are calcinated at 800°C in a box furnace and are bead milled for one hour in a nano agitator bead mill for particle size reduction. Thus obtained nanoparticles are characterized using XRD, SEM, and TEM for particle size reduction, crystallinity, and structure. The PCL solution formed by dissolving 16 wt% of PCL in chloroform is magnetically stirred for 3 hrs at 170 rpm. The HA nanoparticles were infused in this solution by 1, 2, and 3 wt% and is stirred in a think mixer under vacuum for 7 mins for uniform dispersion of nanoparticles in the solution. The solution mixture is injected into the spinneret of force spinning apparatus. The PCL/HA fibers were collected at rotational aped 7000 rpm with a spin time of 10mins. The thermo-mechanical properties of the fibers were analyzed using tensile test, DSC, and DMA analyses. The biological assessment of the fibers is done using in vitro cell studies of the scaffolds that were cut from the fibers. These scaffolds can be further used for various biomedical applications such as sutures and controlled wound healing.
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