School of Medicine, Hunan Normal University, Changsha, 410125, PR China.
Biomater Sci. 2020 Dec 7;8(23):6670-6682. doi: 10.1039/d0bm01398f. Epub 2020 Oct 21.
Bacterial infection, especially multidrug-resistant bacteria-induced infection, threatens human health seriously, which has posed great challenges for clinical therapy. The overuse of conventional antibiotics has given rise to bacterial resistance that severely restricts the clinical treatment options of conventional antibiotics. The development of highly effective antibacterial materials and therapeutic strategies to inhibit the multidrug-resistant bacteria-induced infections is of great urgency. Although silver nanoparticles (AgNPs) have exhibited certain effectiveness in killing multidrug-resistant bacteria, their antibacterial efficacy and biosafety are still unsatisfactory. In this work, we prepared graphene quantum dots (GQDs) by a green synthesis method with the natural polymer starch as a precursor for uniformly decorating AgNPs to form GQDs coated AgNPs (GQDs@Ag). The nanocomplex was comprehensively characterized, and its antibacterial activity and biosafety were systematically investigated. The characterization results revealed that the successfully constructed GQDs@Ag hybrids with improved dispersion and stability are composed of AgNPs closely and uniformly surrounded by the GQDs. Furthermore, in vitro and in vivo results demonstrated that GQDs@Ag hybrids with superior biosafety showed a markedly enhanced effect in killing MRSA and accelerating MRSA-infected wound healing as compared to AgNPs alone. Collectively, these results suggest that the biocompatible nanosystem of GQDs@Ag exhibits great potential in clinical application for MRSA infection.
细菌感染,特别是多药耐药菌引起的感染,严重威胁着人类健康,这给临床治疗带来了巨大挑战。传统抗生素的过度使用导致了细菌耐药性的产生,严重限制了传统抗生素的临床治疗选择。开发高效的抗菌材料和治疗策略来抑制多药耐药菌引起的感染迫在眉睫。尽管银纳米粒子(AgNPs)在杀死多药耐药菌方面表现出一定的效果,但它们的抗菌效果和生物安全性仍不尽如人意。在这项工作中,我们使用天然聚合物淀粉作为前体制备了石墨烯量子点(GQDs),通过绿色合成方法均匀地修饰 AgNPs 形成 GQDs 包裹的 AgNPs(GQDs@Ag)。对纳米复合物进行了全面的表征,并系统地研究了其抗菌活性和生物安全性。表征结果表明,成功构建的 GQDs@Ag 杂化材料具有更好的分散性和稳定性,AgNPs 被紧密均匀地包裹在 GQDs 中。此外,体外和体内结果表明,与单独的 AgNPs 相比,具有优越生物安全性的 GQDs@Ag 杂化材料在杀死 MRSA 和加速 MRSA 感染伤口愈合方面表现出显著增强的效果。综上所述,这些结果表明,GQDs@Ag 的生物相容性纳米系统在治疗耐甲氧西林金黄色葡萄球菌感染的临床应用中具有巨大的潜力。