生物膜
表面电荷
纳米颗粒
渗透(战争)
化学工程
聚合物
妥布霉素
逐层
材料科学
生物物理学
化学
纳米技术
阳离子聚合
图层(电子)
细菌
抗生素
高分子化学
有机化学
生物化学
遗传学
物理化学
运筹学
庆大霉素
工程类
生物
作者
Elad Deiss‐Yehiely,Gerardo Cárcamo‐Oyarce,Adam G. Berger,Katharina Ribbeck,Paula T. Hammond
出处
期刊:ACS Biomaterials Science & Engineering
[American Chemical Society]
日期:2023-06-30
卷期号:9 (8): 4794-4804
被引量:6
标识
DOI:10.1021/acsbiomaterials.3c00481
摘要
Microbes entrenched within biofilms can withstand 1000-fold higher concentrations of antibiotics, in part due to the viscous extracellular matrix that sequesters and attenuates antimicrobial activity. Nanoparticle (NP)-based therapeutics can aid in delivering higher local concentrations throughout biofilms as compared to free drugs alone, thereby enhancing the efficacy. Canonical design criteria dictate that positively charged nanoparticles can multivalently bind to anionic biofilm components and increase biofilm penetration. However, cationic particles are toxic and are rapidly cleared from circulation in vivo, limiting their use. Therefore, we sought to design pH-responsive NPs that change their surface charge from negative to positive in response to the reduced biofilm pH microenvironment. We synthesized a family of pH-dependent, hydrolyzable polymers and employed the layer-by-layer (LbL) electrostatic assembly method to fabricate biocompatible NPs with these polymers as the outermost surface. The NP charge conversion rate, dictated by polymer hydrophilicity and the side-chain structure, ranged from hours to undetectable within the experimental timeframe. LbL NPs with an increasingly fast charge conversion rate more effectively penetrated through, and accumulated throughout, wildtype (PAO1) and mutant overexpressing biomass (ΔwspF) Pseudomonas aeruginosa biofilms. Finally, tobramycin, an antibiotic known to be trapped by anionic biofilm components, was loaded into the final layer of the LbL NP. There was a 3.2-fold reduction in ΔwspF colony forming units for the fastest charge-converting NP as compared to both the slowest charge converter and free tobramycin. These studies provide a framework for the design of biofilm-penetrating NPs that respond to matrix interactions, ultimately increasing the efficacious delivery of antimicrobials.
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