Zou Qin, Li Junfeng, Niu Lulu, Zuo Yi, Li Jidong, Li Yubao
a Research Center for Nano-Biomaterials, Analytical & Testing Center , Sichuan University , Chengdu , China.
b Department of Materials Science & Engineering , Chengdu University of Technology , Chengdu , China.
J Biomater Sci Polym Ed. 2017 Sep;28(13):1271-1285. doi: 10.1080/09205063.2017.1318029. Epub 2017 Apr 21.
The dipping-drying procedure and cross-linking method were used to make drug-loaded chitosan (CS) coating on nano-hydroxyapatite/polyamide66 (nHA/PA66) composite porous scaffold, endowing the scaffold controlled drug release functionality. The prefabricated scaffold was immersed into an aqueous drug/CS solution in a vacuum condition and then crosslinked by vanillin. The structure, porosity, composition, compressive strength, swelling ratio, drug release and cytocompatibility of the pristine and coating scaffolds were investigated. After coating, the scaffold porosity and pore interconnection were slightly decreased. Cytocompatibility performance was observed through an in vitro experiment based on cell attachment and the MTT assay by MG63 cells which revealed positive cell viability and increasing proliferation over the 11-day period in vitro. The drug could effectively release from the coated scaffold in a controlled fashion and the release rate was sustained for a long period and highly dependent on coating swelling, suggesting the possibility of a controlled drug release. Our results demonstrate that the scaffold with drug-loaded crosslinked CS coating can be used as a simple technique to render the surfaces of synthetic scaffolds active, thus enabling them to be a promising high performance biomaterial in bone tissue engineering.
采用浸渍干燥法和交联法在纳米羟基磷灰石/聚酰胺66(nHA/PA66)复合多孔支架上制备载药壳聚糖(CS)涂层,赋予支架控释药物功能。将预制支架在真空条件下浸入药物/CS水溶液中,然后用香草醛交联。研究了原始支架和涂层支架的结构、孔隙率、组成、抗压强度、溶胀率、药物释放和细胞相容性。涂层后,支架孔隙率和孔隙连通性略有降低。通过基于细胞附着的体外实验和MG63细胞的MTT测定观察细胞相容性性能,结果显示细胞活力呈阳性,且在体外11天内增殖增加。药物能够以可控方式从涂层支架中有效释放,释放速率长期维持,且高度依赖于涂层溶胀,这表明了控释药物的可能性。我们的结果表明,载药交联CS涂层的支架可作为一种简单技术使合成支架表面具有活性,从而使其成为骨组织工程中有前景的高性能生物材料。