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Nanodiamond-supported silver nanoparticles as potent and safe antibacterial agents

机译:纳米金属支撑的银纳米粒子作为有效和安全的抗菌剂

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Since its discovery nearly a century ago, antibiotics has been one of the most effective methods in treating infectious diseases and limiting pathogen spread. However, pathogens often build up antibiotic resistance over time, leading to serious failure of the treatment. Silver nanoparticle (AgNP) is an appealing alternative, but successful treatment of the bacterial infection requires a plentiful supply of AgNP, which can negatively impact human health if people are excessively exposed to the particles. Here, we present a method to overcome this challenge by synthesizing nanodiamond-supported AgNP noncovalently conjugated with albumin molecules to achieve enhanced antibacterial activity and strengthened biocompatibility. Using Escherichia coli as a model bacterium, we found that the albumin-conjugated silver-diamond nanohybrids showed a long-term bactericidal effect after 36 days of the treatment at the AgNP concentration of 250?μg?mLsup-1/sup. Moreover, the toxicity of the nanohybrids to human cells (including human fibroblasts, lung adenocarcinoma epithelial cells, and breast adenocarcinoma cells) is low even at the particle concentration of 500?μg?mLsup-1/sup. The method provides a general and practical solution to the concerns of bacterial resistance against AgNP and issues associated with the size, shape, aggregation, and toxicity of AgNP are largely resolved. Finally, we demonstrate that the nanohybrids can be readily incorporated into natural polysaccharides (such as guar gum) to form three-in-one hydrogels, showing promising applications in nanomedicine.
机译:自近20世纪前发现以来,抗生素是治疗传染病和限制病原体传播中最有效的方法之一。然而,病原体通常会随着时间的推移而增加抗生素抗性,导致治疗严重失败。银纳米粒子(AGNP)是一种吸引人的替代品,但成功治疗细菌感染需要充足的AGNP供应,如果人们过度暴露于颗粒,这可能会产生负面影响。这里,我们提出了一种通过合成纳米金属支持的AgNP与白蛋白分子共价缀合来克服这一挑战,以实现增强的抗菌活性并加强生物相容性。使用大肠杆菌作为模型细菌,我们发现白蛋白 - 共轭银 - 金刚石纳米胺在治疗36天的AgNP浓度为250Ω×ml -1 / sop的情况下在36天后显示出长期的杀菌效果。 >。此外,即使在500Ω·×ml -1 -1 / sop>的颗粒浓度下,纳米冬小麦对人细胞(包括人成纤维细胞,肺腺癌上皮细胞和乳腺腺癌细胞)的毒性也是低的。该方法提供了对AGNP的细菌抗性的担忧的一般和实际的解决方案,以及与AGNP的大小,形状,聚集和毒性相关的问题在很大程度上。最后,我们证明纳米冬余地可以容易地掺入天然多糖(如瓜尔胶)中以形成三对水凝胶,显示在纳米胺的有前途的应用。

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