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Biomedical Potential of Ultrafine Ag/AgCl Nanoparticles Coated on Graphene with Special Reference to Antimicrobial Performances and Burn Wound Healing

机译:石墨烯包覆的超细Ag / AgCl纳米颗粒的生物医学潜力,特别涉及抗菌性能和烧伤愈合

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In recent years, researchers have proven the release of silver ions (Ag+) from silver nanoparticles (Ag NPs) significantly affects their toxicity to bacteria and other organisms. Due to the difficulty in maintaining a steady flux of a high concentration of Ag+, it is still challenging to develop a highly efficient, stable, and biocompatible Ag NP-based antimicrobial material. To circumvent this issue, we developed a new Ag-based bactericide through the fabrication of sunlight driven and ultrafine silver/silver chloride anchored on reduced graphene oxide (Ag/AgCl/rGO). This stable Ag/AgCl nanophotocatalyst with negligible release of Ag+ generated a high amount of oxidative radicals, killing the bacteria, thus achieving both high bactericidal efficiency and stability. Moreover, functionalization of the nanomaterial with poly(diallyldimethylammonium chloride) (PDDA) gives it a highly adsorptive capacity, which allows it to capture the bacteria and possibly enhances the bactericidal activity. In vivo histopathological studies showed that the Ag/AgCl/rGO nanomaterial could obviously promote the regeneration of the epidermis, which indicated the good biomedical potential of Ag/AgCl/rGO nanomaterial in burn wound healing.
机译:近年来,研究人员已证明从银纳米颗粒(Ag NPs)中释放银离子(Ag +)会严重影响其对细菌和其他生物体的毒性。由于难以维持高浓度的Ag +的稳定流量,因此开发高效,稳定且生物相容的基于Ag NP的抗菌材料仍然具有挑战性。为了解决这个问题,我们开发了一种新型的基于Ag的杀菌剂,该方法通过制造阳光驱动的,固定在还原氧化石墨烯(Ag / AgCl / rGO)上的超细银/氯化银。这种稳定的Ag / AgCl纳米光催化剂具有可忽略的Ag +释放,可产生大量的氧化自由基,杀死细菌,从而达到很高的杀菌效率和稳定性。此外,用聚二烯丙基二甲基氯化铵(PDDA)对纳米材料进行功能化使其具有很高的吸附能力,从而使其能够捕获细菌并可能增强杀菌活性。体内组织病理学研究表明,Ag / AgCl / rGO纳米材料可以明显促进表皮的再生,表明Ag / AgCl / rGO纳米材料在烧伤创面中具有良好的生物医学潜力。

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