光热治疗
生物膜
丝素
纳米载体
光敏剂
生物相容性
光动力疗法
抗菌剂
材料科学
体内
微生物学
化学
纳米技术
药物输送
细菌
丝绸
生物
有机化学
冶金
复合材料
生物技术
遗传学
作者
Feiyang Xu,Ting Cui,Zhi Long,Haidong Shen,Xie Hong,Hongfu Liu,Jianfei Xie,Kai Yang,Yugui Tao
标识
DOI:10.1021/acsinfecdis.5c00249
摘要
The development of drug-resistant biofilms has resulted in treatment failures for multidrug resistant (MDR) bacteria, presenting a substantial challenge to global public health. Consequently, the development of antibacterial agents has become an urgent priority. To overcome the limitations of poor penetration and inadequate efficacy of single-modal treatments for MDR bacterial biofilm infections, this study developed a Ce6/SFP nanocomposite system utilizing silk fibroin and polydopamine. The nanoparticles, fabricated via a desolvation-in situ polymerization method, demonstrated pH-responsive drug release properties. When subjected to an 808 nm NIR laser, the material exhibited a photothermal conversion efficiency of 29.3%. Furthermore, when paired with singlet oxygen produced through 660 nm excitation, it was highly effective in eliminating MDR Escherichia coli and MDR Staphylococcus aureus. The synergistic effect of photothermal therapy (PTT) and photodynamic therapy (PDT) disrupted the stability of the cell membrane and enhanced the antibacterial efficacy. Experimental results showed that the photothermal effect increased biofilm permeability, significantly improving Ce6 penetration depth. Moreover, in vivo treatments exhibited accelerated wound healing. Biocompatibility assessments revealed a hemolysis rate below 5% and no pathological damage to major organs. This study proposes a synergistic strategy to effectively address the challenges posed by biofilms and bacterial resistance.
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