Antimicrobial applications of amphiphilic gold nanoparticles for antibiotic delivery.

IF 5.7
Harita Yedavally, Matteo Gasbarri, Jan Maarten van Dijl, Francesco Stellacci, Anna Salvati
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引用次数: 0

Abstract

Nanomedicine can offer novel strategies in the fight against antimicrobial resistance. Nano-sized drug carriers can be used to deliver antibiotics to their target to treat infections and some nanomaterials themselves have antimicrobial properties. Here, small amphiphilic gold nanoparticles with mixed ligand surfaces have been investigated for their potential use against bacterial infections in different settings. Owing to their unique surface properties, these nanoparticles are known to directly penetrate cell membranes, instead of entering cells by energy-dependent mechanisms of endocytosis, as observed for most nanomaterials. Therefore, we aimed to explore whether this capacity could be exploited to target and eliminate bacteria. To this end, different antibiotic-loaded small amphiphilic gold nanoparticles were prepared and their antimicrobial activity against the human pathogen Staphylococcus aureus was demonstrated. Next, we tested whether the antibiotic-loaded nanoparticles could be used to treat intracellular S. aureus infections, as well as to penetrate and eradicate biofilms. In the case of intracellular infections, nanoparticle uptake was accompanied by a mild decrease in the intracellular bacterial population. In the case of biofilms, instead, the nanoparticles were able to penetrate throughout the thickness of the biofilm, rather than only reaching the upper layers, as observed for most nanomaterials. Moreover, both the amphiphilic gold nanoparticles themselves and the antibiotic-loaded variants strongly induced death of biofilm-embedded bacteria.

两亲性金纳米颗粒在抗生素递送中的抗菌应用。
纳米医学可以为对抗抗菌素耐药性提供新的策略。纳米级药物载体可用于将抗生素运送到其目标以治疗感染,并且一些纳米材料本身具有抗菌特性。在这里,研究了具有混合配体表面的小两亲性金纳米颗粒在不同环境下对抗细菌感染的潜在用途。由于其独特的表面特性,这些纳米颗粒可以直接穿透细胞膜,而不是像大多数纳米材料那样通过能量依赖的内吞机制进入细胞。因此,我们的目的是探索是否可以利用这种能力来靶向和消除细菌。为此,制备了不同负载抗生素的两亲性小金纳米颗粒,并证明了它们对人类病原体金黄色葡萄球菌的抗菌活性。接下来,我们测试了负载抗生素的纳米颗粒是否可用于治疗细胞内金黄色葡萄球菌感染,以及穿透和根除生物膜。在细胞内感染的情况下,纳米颗粒的摄取伴随着细胞内细菌数量的轻微减少。相反,在生物膜的情况下,纳米颗粒能够穿透整个生物膜的厚度,而不是像大多数纳米材料所观察到的那样只到达上层。此外,两亲性金纳米颗粒本身和抗生素负载变体都强烈诱导生物膜内细菌的死亡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of materials chemistry. B
Journal of materials chemistry. B 化学科学, 工程与材料, 生命科学, 分析化学, 高分子组装与超分子结构, 高分子科学, 免疫生物学, 免疫学, 生化分析及生物传感, 组织工程学, 生物力学与组织工程学, 资源循环科学, 冶金与矿业, 生物医用高分子材料, 有机高分子材料, 金属材料的制备科学与跨学科应用基础, 金属材料, 样品前处理方法与技术, 有机分子功能材料化学, 有机化学
CiteScore
12.00
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0.00%
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0
审稿时长
1 months
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