生物膜
微生物学
纳米凝胶
金黄色葡萄球菌
细菌
纳米载体
环丙沙星
粪肠球菌
细菌细胞结构
表皮葡萄球菌
致病菌
铜绿假单胞菌
抗生素
材料科学
化学
药物输送
生物
纳米技术
遗传学
作者
Paul J. Weldrick,Matthew J. Hardman,Vesselin N. Paunov
标识
DOI:10.1021/acsami.9b16119
摘要
. We confirmed a 6-fold decrease in the biofilm mass and a substantial reduction in bacterial cell density using fluorescence, atomic force, and scanning electron microscopy. Additionally, we showed that co-treatments of ciprofloxacin and Alcalase-coated Carbopol nanogels led to a 3-log reduction in viable biofilm-forming cells when compared to ciprofloxacin treatments alone. Encapsulating an equivalent concentration of ciprofloxacin into the Alcalase-coated nanogel particles boosted their antibacterial effect much further, reducing the bacterial cell viability to below detectable amounts after 6 h of treatment. The Alcalase-coated nanogel particles were noncytotoxic to human adult keratinocyte cells (HaCaT), inducing a very low apoptotic response in these cells. Overall, we demonstrated that the Alcalase-coated nanogels loaded with a cationic antibiotic elicit very strong biofilm-clearing effects against wound-associated biofilm-forming pathogenic bacteria. This nanotechnology approach has the potential to become a very powerful treatment of chronically infected wounds with biofilm-forming bacteria.
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