Department of Molecular Microbiology and Biotechnology, George S. Wise Faculty of Life Sciences, Tel Aviv University, Tel Aviv 69978, Israel.
Centre for Misfolding Diseases, Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, U.K.
Nano Lett. 2020 Mar 11;20(3):1590-1597. doi: 10.1021/acs.nanolett.9b04290. Epub 2020 Feb 17.
Self-assembling peptides and proteins have the potential to serve as multifunctional building blocks for the generation of versatile materials for a wide range of biomedical applications. In particular, supramolecular hydrogels comprised of self-assembled protein nanofibrils, have been used in contexts ranging from tissue engineering to drug delivery. Due to the rapid emergence of multidrug resistant bacteria, development of biomaterials with intrinsic antimicrobial properties has been continuously increasing. Here, we describe hybrid organic/inorganic nanofibrillar silk microgels decorated with silver nanoparticles that display potent antimicrobial activity and and are able to adhere bacterial cells to their surfaces while subsequently eradicating them, through a two-step mechanism of action. Importantly, in contrast to treatments involving conventional silver, these silk-silver microgels are nonhemolytic and noncytotoxic toward mammalian cell lines. Finally, we show that these hybrid microgels display substantial efficacy as topical antimicrobial agents in a murine model of surgical site infections.
自组装肽和蛋白质有可能成为多功能构建块,用于生成各种用于广泛的生物医学应用的材料。特别是,由自组装的蛋白质纳米纤维组成的超分子水凝胶已被用于从组织工程到药物输送等多种情况。由于多药耐药菌的迅速出现,具有内在抗菌特性的生物材料的开发一直在不断增加。在这里,我们描述了用银纳米粒子修饰的混合有机/无机纳米纤维丝微凝胶,该微凝胶显示出很强的抗菌活性,并能够通过两步作用机制将细菌细胞粘附在其表面,随后将其消灭。重要的是,与涉及常规银的治疗方法相比,这些丝-银微凝胶对哺乳动物细胞系没有溶血和细胞毒性。最后,我们表明,这些混合微凝胶在手术部位感染的小鼠模型中作为局部抗菌剂具有显著的功效。