小学(天文学)
金黄色葡萄球菌
酶
微生物学
细菌
生物催化
免疫系统
活性氧
抗生素
材料科学
生物
启动(农业)
伤口感染
钒
氧气
抗生素耐药性
组合化学
化学
抗菌活性
细菌细胞结构
人工酶
免疫学
药品
葡萄球菌感染
纳米技术
生物化学
细胞毒性
抗药性
化脓性链球菌
作者
Jiangge Li,Mao Wang,H Yang,Minjia Yuan,Wang Th,Mohsen Adeli,Wei Geng,Weifeng Zhao,Chong Cheng,Changsheng Zhao
摘要
Bacterial infection poses a significant threat to clinical treatment due to the emergence of drug resistance and the high risk of recurrence. Here, we report the de novo design of a spiky pollen-based vanadium artificial enzyme particle (VAE-Pollen) that integrates potent reactive oxygen species (ROS)-catalytic activity with immune priming to prevent both primary and secondary bacterial infections. Experimental and theoretical analyses confirm that bacteria are efficiently captured by the micro-structured surface of VAE-Pollen, and the introduction of oxygen vacancies modulates the electronic configuration of vanadium catalytic sites, significantly enhancing their versatile ROS-catalytic performance. Meanwhile, VAE-Pollen enhances bacterial capture and ROS-triggered release of bacterial antigens, which mimics the sustained allergen exposure characteristic of natural pollen, thereby potently activating systemic defensive responses and providing sustained anti-infective surveillance to prevent secondary wound infection. Notably, the VAE-Pollen demonstrates significant efficacy in treating methicillin-resistant Staphylococcus aureus (MRSA) and preventing its recurrence, offering a potent and intelligent antibacterial alternative that may circumvent the limitations of conventional antibiotics.
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