Bacterial-engineered self-stabilizing ultra-small AgCu nanoparticles for dual antimicrobial-anticancer therapy
收藏中国科学数据2025-12-25 更新2026-04-25 收录
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https://www.sciengine.com/AA/doi/10.1016/j.bioactmat.2025.10.034
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Bimetallic silver-copper nanoparticles (AgCu NPs) exhibit enhanced antibacterial properties compared to their monometallic counterparts; however, their clinical translation is limited by poor stability and biocompatibility. Here, we unveil a bacterial incubation-driven synthesis (bacterial-enabled dynamic nanoreactor) of ultra-small AgCu NPs with dual antimicrobial-antitumor functionality. Remarkably, conventional 15 nm AgCu NPs undergo spontaneous size reduction to 2 nm upon interaction withE. coliorS. aureus, accompanied by a complete loss of surface plasmon resonance (SPR) and formation of protein-capped stable dispersions. Mechanistic studies reveal this bacterially triggered transformation involves Ag+release via oxidative dissolution in saline environments, followed by PVP/PVA and bacterial biomolecule-mediated re-nucleation. The US-AgCu NPs demonstrate synergistic therapeutic advantages: Enhanced antibacterial potency compared to parent NPs; pH-selective cytotoxicity; Reusable antimicrobial performance over multiple cycles with minimal resistance development; Long-term stability. This bio-derived strategy achieves kilogram-scale production of therapeutic NPs via continuous fermentation, addressing critical challenges in nanomaterial manufacturing for combating antimicrobial resistance and malignancies.Image 1View The PDF
创建时间:
2025-12-11



