姜黄素
脚手架
生物相容性
抗菌活性
化学
3d打印
壳聚糖
骨愈合
姜黄素
核化学
药物输送
生物医学工程
材料科学
纳米技术
生物化学
细菌
外科
有机化学
医学
生物
遗传学
作者
Cheng Ji,Chengcheng Zhang,Zeya Xu,Yan Chen,Yanming Gan,Minghui Zhou,Lan Li,Qinying Duan,Tingting Huang,Jinxin Lin
标识
DOI:10.3389/fbioe.2023.1193605
摘要
Bacterial infection is a major challenge that could threaten the patient’s life in repairing bone defects with implant materials. Developing functional scaffolds with an intelligent antibacterial function that can be used for bone repair is very important. We constructed a drug delivery (HA@TA-CS/SA) scaffold with curcumin-loaded dendritic mesoporous organic silica nanoparticles (DMON@Cur) via 3D printing for antibacterial bone repair. Inspired by the adhesion mechanism of mussels, the HA@TA-CS/SA scaffold of hydroxyapatite (HA) and chitosan (CS) is bridged by tannic acid (TA), which in turn binds sodium alginate (SA) using electrostatic interactions. The results showed that the HA@TA-CS/SA composite scaffold had better mechanical properties compared with recent literature data, reaching 68.09 MPa. It displayed excellent degradation and mineralization capabilities with strong biocompatibility in vitro . Furthermore, the antibacterial test results indicated that the curcumin-loaded scaffold inhibited S.aureus and E.coli with 99.99% and 96.56% effectiveness, respectively. These findings show that 3D printed curcumin-loaded HA@TA-CS/SA scaffold has considerable promise for bone tissue engineering.
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