Institute of Advanced Materials for Nano-Bio Applications, School of Ophthalmology & Optometry, Wenzhou Medical University, 270 Xueyuan Xi Road, Wenzhou, Zhejiang 325027, China.
Institute of Biomaterials, Department of Materials Science and Engineering, University of Erlangen-Nuremberg, Cauerstrasse 6, Erlangen 91058, Germany.
Mater Sci Eng C Mater Biol Appl. 2015 Nov 1;56:473-80. doi: 10.1016/j.msec.2015.06.046. Epub 2015 Jul 9.
Novel chitosan-polyvinyl pyrrolidone/45S5 Bioglass® (CS-PVP/BG) scaffolds were prepared via foam replication and chemical cross-linking techniques. The pristine BG, CS-PVP coated BG and genipin cross-linked CS-PVP/BG (G-CS-PVP/BG) scaffolds were synthesized and characterized in terms of chemical composition, physical structure and morphology respectively. Resistance to enzymatic degradation of the scaffold is improved significantly with the use of genipin cross-linked CS-PVP. The bio-effects of scaffolds on MC3T3-E1 osteoblast-like cells were evaluated by studying cell viability, adhesion and proliferation. The CCK-8 assay shows that cell viability on the resulting G-CS-PVP/BG scaffold is improved obviously after cross-linking of genipin. Cell skeleton images exhibit that well-stretched F-actin bundles are obtained on the G-CS-PVP/BG scaffold. SEM results present significant improvement on the cell adhesion and proliferation for cells cultured on the G-CS-PVP/BG scaffold. The drug release performance on the as-synthesized scaffold was studied in a phosphate buffered saline (PBS) solution. Vancomycin is found to be released in burst fashion within 24h from the pristine BG scaffold, however, the release period from the G-CS-PVP/BG scaffold is enhanced to 7days, indicating improved drug release properties of the G-CS-PVP/BG scaffold. Our results suggest that the G-CS-PVP/BG scaffolds possess promising physicochemical properties, sustained drug release capability and good biocompatibility for MC3T3-E1 cells' proliferation and adhesion, suggesting their potential applications in areas such as MC3T3-E1 cell stimulation and bone tissue engineering.
通过泡沫复制和化学交联技术制备了新型壳聚糖-聚乙烯吡咯烷酮/45S5 生物玻璃(CS-PVP/BG)支架。分别对原始 BG、CS-PVP 涂层 BG 和京尼平交联 CS-PVP/BG(G-CS-PVP/BG)支架进行了合成和表征,从化学组成、物理结构和形态等方面进行了研究。使用京尼平交联 CS-PVP 可显著提高支架的抗酶降解能力。通过研究细胞活力、黏附和增殖,评估了支架对 MC3T3-E1 成骨样细胞的生物效应。CCK-8 测定表明,京尼平交联后,G-CS-PVP/BG 支架上细胞活力明显提高。细胞骨架图像显示,在 G-CS-PVP/BG 支架上获得了良好伸展的 F-肌动蛋白束。SEM 结果表明,细胞在 G-CS-PVP/BG 支架上的黏附和增殖有显著改善。研究了在磷酸盐缓冲盐水(PBS)溶液中合成支架的药物释放性能。万古霉素从原始 BG 支架中在 24h 内以爆发方式释放,但从 G-CS-PVP/BG 支架的释放时间延长至 7 天,表明 G-CS-PVP/BG 支架的药物释放性能得到改善。我们的研究结果表明,G-CS-PVP/BG 支架具有良好的理化性能、持续的药物释放能力和良好的生物相容性,有利于 MC3T3-E1 细胞的增殖和黏附,为其在 MC3T3-E1 细胞刺激和骨组织工程等领域的应用提供了依据。