生物膜
过氧亚硝酸盐
化学
单线态氧
活性氧
活性氮物种
渗透(战争)
一氧化氮
微生物学
超氧化物
生物物理学
氧气
多药耐受
抗生素
纳米毒理学
药物输送
体外
细胞毒性
抗菌活性
过氧亚硝酸
巨噬细胞极化
氧化磷酸化
纳米囊
抗菌剂
细菌
作者
Lu Liang,Songyirui Qiu,Li Wen,Hongbin Gong,Qi Zhang,Lihui Yuwen,Dongliang Yang,Zhaowei Yinc,Lianhui Wang
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2025-10-17
卷期号:18 (12): 94908166-94908166
被引量:3
标识
DOI:10.26599/nr.2025.94908166
摘要
Conventional antibiotic treatment of bacterial infections associated with biofilms usually suffers from poor penetration and drug resistance. Ultrasound (US)-responsive antibacterial systems have shown great promise in the elimination of bacterial biofilms, benefiting from their unique sonophysical and sonochemical effects. In this study, PFP@Lip-BNN6/Ce6 nanodroplets (PLBC NDs) were prepared by using perfluoropentane (PFP) to load chlorin e6 (Ce6) and a nitric oxide (NO) precursor (BNN6) for treating Staphylococcus aureus (S. aureus) implant infection. PLBC NDs physically disrupt the biofilm structure by US-triggered PFP phase transition and cavitation to enhance the permeation of Ce6 and BNN6. Under US irradiation, Ce6 generates various reactive oxygen species (ROS), such as singlet oxygen (1O2) and superoxide anion (O2.−); BNN6 releases NO and then reacts with O2.− to form peroxynitrite anion (ONOO−), one of the long-lived reactive nitrogen species (RNS), thus realizing synergistic ROS/RNS antibacterial activity. In vitro experiments showed that PLBC NDs reduced the biofilm biomass of S. aureus in 96-well plates by 65.9%, with a bacterial inactivation rate of 4.4 Log (99.995%), significantly surpassing single treatments. Transcriptomic analysis indicated that PLBC NDs can interfere with key pathways of S. aureus biosynthesis, metabolism, and oxidative stress. In a mouse titanium implant infection model, PLBC NDs reduced the number of viable bacteria in infected tissues by 3.5 Log (99.97%) and promoted macrophage polarization towards an anti-inflammatory phenotype (M2). Toxicity assessments demonstrated the favorable safety profile of PLBC NDs. This study presents a multifunctional US-responsive nanoplatform integrating sonophysical disruption and sonochemical killing for effective biofilm infection treatment.
科研通智能强力驱动
Strongly Powered by AbleSci AI