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Atomic-engineered gold@silvergold alloy nanoflowers for in vivo inhibition of bacteria

机译:Atomic-engineered gold@silvergold合金nanoflowers体内抑制细菌

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摘要

The problems of multidrug-resistant bacteria and environmental pollution associated with the abuse of antibiotics call for effective antibiotic alternatives. Here, gold@silvergold alloy nanoflowers (Au@AgAu ANFs) with distinct atomic structures are first fabricated and then demonstrated for in vivo inhibition of bacteria. The Au@AgAu ANFs display high antibacterial activity against the model Gram-negative bacterium Escherichia coli, with a minimum inhibitory concentration value of 4.8 g mL(-1), which is 3.1 times lower than that of silver nanoparticles. The alloy structure with a rough surface enables Au@AgAu ANFs to firmly adhere to the bacterial surface and damage the cell membrane, resulting in long-term (48 h) and highly stable (30 days) antibacterial activity. Meanwhile, the Au@AgAu ANFs show remarkable biocompatibility with human cells even at a high concentration of 40 g mL(-1). Application of Au@AgAu ANFs in the treatment of bacterial infections in the mouse intestine significantly reduces the reproduction of bacteria compared to an untreated mouse, giving results similar to those of the current antibiotic treatment, with no cytotoxicity. Our study opens up a new avenue for the rational design of safe and highly efficient antibacterial materials.
机译:耐多药和细菌的问题环境污染与虐待抗生素的呼吁有效的抗生素替代方案。nanoflowers (Au@AgAu曾帮工)与不同的原子结构是第一,然后制作的演示的体内抑制细菌。的Au@AgAu曾帮工显示高抗菌活动对革兰氏阴性模型细菌大肠杆菌,最低抑制浓度的4.8克毫升(1),低于3.1倍的银子纳米粒子。表面使Au@AgAu曾帮工恪守细菌细胞表面和损害膜,导致长期(48小时)高度稳定的抗菌活性(30天)。与此同时,Au@AgAu曾帮工显示非凡的即使在高生物相容性与人类细胞40克毫升(1)的浓度。在治疗细菌Au@AgAu曾帮工老鼠肠道感染相比减少了细菌的繁殖一个未经处理的小鼠,给予结果相似当前抗生素治疗的没有细胞毒性。设计合理的安全高度高效的抗菌材料。

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