Zhang Rui, Luo Dandan, Jaber Mohammad, Zhang Han, Kong Xiangdong
Institute for Smart Biomedical Materials, School of Materials Science & Engineering, Zhejiang Sci-Tech University, Hangzhou, 310000, PR China.
Zhejiang-Mauritius Joint Research Center for Biomaterials and Tissue Engineering, Zhejiang Sci-Tech University, Hangzhou, 310000, PR China.
Chempluschem. 2025 Jan;90(1):e202400478. doi: 10.1002/cplu.202400478. Epub 2024 Oct 29.
The antibacterial properties of modified silk fibroin microfibers (SF MFs) have been widely studied. Among various modifications, integration of silver nanoparticles (Ag NPs) and SF MFs has garnered significant attention due to the broad-spectrum antibacterial activities and long-term antibacterial effect of Ag nanomaterials. However, the traditional introduction of reducing agents or other additives during the synthesis of Ag-SF composite MFs potentially affects their structure and antibacterial properties. Facile, green and effective methods for the preparation of Ag-SF MFs with enhanced antibacterial properties are therefore highly desired. In this study, Ag NPs were uniformly in-situ deposited onto the optimized SF MFs by adjusting the pH and duration conditions under the guidance of green chemistry. The loaded Ag NPs have a good dispersibility and an average size of ~10 nm. The stability of SF MFs after the deposition of Ag NPs and the crystalline features of the loaded Ag NPs have been carefully investigated. Moreover, antibacterial experiments confirmed that Ag-SF MFs exhibited superior antibacterial activities. After co-incubating Ag-SF MFs with L929 cells, the cell viability reached 90 %, demonstrating the great biocompatibility of the modified fibers. This green in-situ synthetic method will promote the further medical use of Ag-SF MFs in antibacterial fields.
改性丝素蛋白微纤维(SF MFs)的抗菌性能已得到广泛研究。在各种改性方法中,由于银纳米材料具有广谱抗菌活性和长期抗菌效果,银纳米颗粒(Ag NPs)与SF MFs的结合受到了广泛关注。然而,在合成Ag-SF复合微纤维的过程中,传统的引入还原剂或其他添加剂的方法可能会影响其结构和抗菌性能。因此,迫切需要简便、绿色且有效的方法来制备具有增强抗菌性能的Ag-SF MFs。在本研究中,在绿色化学的指导下,通过调节pH值和持续时间条件,将Ag NPs均匀地原位沉积在优化后的SF MFs上。负载的Ag NPs具有良好的分散性,平均粒径约为10 nm。对Ag NPs沉积后SF MFs的稳定性以及负载的Ag NPs的晶体特征进行了仔细研究。此外,抗菌实验证实Ag-SF MFs表现出优异的抗菌活性。将Ag-SF MFs与L929细胞共孵育后,细胞活力达到90%,表明改性纤维具有良好的生物相容性。这种绿色原位合成方法将促进Ag-SF MFs在抗菌领域的进一步医学应用。