Department of Metallurgical and Materials Engineering, Defence Institute of Advanced Technology, Pune, Maharashtra, India.
National Centre for Cell Science, Pune, Maharashtra, India.
J Biomater Sci Polym Ed. 2020 Sep;31(13):1648-1670. doi: 10.1080/09205063.2020.1769799. Epub 2020 Jun 7.
In this study, poly(ε-caprolactone) (PCL) has been blended with a more hydrophilic poly(ethylene glycol) (PEG) and with a biocompatible block-co-polymer: poly(L-lactide-co-ε-caprolactone-co-glycolide) (PLCG) in order to improve hydrophilicity, biocompatibility and biodegradability of PCL. PCL and the blend solutions were subjected to electrospinning to produce nanofiber scaffolds by the addition of only 1 wt% of PEG and PLCG either singly or in combination in PCL to retain the mechanical properties of the scaffolds. PCL-PEG-PLCG ternary and two binary (PCL-PEG and PCL-PLCG) blend nanofiber scaffolds have been prepared for comparison. The resulting nanofibers showed a smooth and flaw-free surface and the diameter of the nanofibers displayed a normal distribution. The PCL-PEG nanofiber scaffold showed improved hydrophilicity [water contact angle (WCA) ∼84°] over pristine PCL (WCA ∼127°); while PCL-PLCG and PCL-PEG-PLCG scaffolds exhibited absolute wetting by water, likely due to high porosity. biocompatibility studies using gingival mesenchymal stem cells (gMSCs) suggested that, both the PCL and the blend scaffolds were biocompatible supporting cell-viability and growth of gMSCs following their seeding on these scaffolds. Biodegradation studies in phosphate buffer solution showed that the addition of PEG and PLCG in PCL increased the weight loss of scaffolds with time, indicating higher extent of biodegradation in the blend scaffolds and the weight loss followed the power law curve with time.
在这项研究中,聚己内酯(PCL)与更亲水的聚乙二醇(PEG)和生物相容性的嵌段共聚物:聚(L-丙交酯-co-ε-己内酯-co-丙交酯)(PLCG)混合,以提高 PCL 的亲水性、生物相容性和生物降解性。将 PCL 和共混溶液进行静电纺丝,通过在 PCL 中单独或组合添加仅 1wt%的 PEG 和 PLCG,生产出纳米纤维支架,以保持支架的机械性能。为了进行比较,制备了 PCL-PEG-PLCG 三元和两种二元(PCL-PEG 和 PCL-PLCG)共混纳米纤维支架。得到的纳米纤维具有光滑、无缺陷的表面,纳米纤维的直径呈正态分布。与原始 PCL(WCA∼127°)相比,PCL-PEG 纳米纤维支架显示出改善的亲水性[水接触角(WCA)∼84°];而 PCL-PLCG 和 PCL-PEG-PLCG 支架则完全被水润湿,这可能是由于高孔隙率所致。使用牙龈间充质干细胞(gMSCs)进行的生物相容性研究表明,PCL 和共混支架均具有生物相容性,支持 gMSCs 在这些支架上的细胞活力和生长。在磷酸盐缓冲溶液中的生物降解研究表明,PEG 和 PLCG 在 PCL 中的添加随着时间的推移增加了支架的重量损失,表明共混支架的生物降解程度更高,并且重量损失随时间遵循幂律曲线。