益生菌
病菌
失调
急性胃肠炎
微生物学
抗生素
殖民抵抗
活性氧
胃肠道
生物膜
氧化应激
肠道菌群
生物
免疫学
细菌
病毒学
细胞生物学
生物化学
遗传学
作者
Gen Wei,Wanling Liu,Yihong Zhang,Zijun Zhou,Yuting Wang,Xiaoyu Wang,Shuaishuai Zhu,Tong Li,Hui Wei
出处
期刊:Nano Letters
[American Chemical Society]
日期:2024-02-11
卷期号:24 (7): 2289-2298
被引量:5
标识
DOI:10.1021/acs.nanolett.3c04548
摘要
Antibiotic therapeutics to combat intestinal pathogen infections often exacerbate microbiota dysbiosis and impair mucosal barrier functions. Probiotics are promising strategies, because they inhibit pathogen colonization and improve intestinal microbiota imbalance. Nevertheless, their limited targeting ability and susceptibility to oxidative stress have hindered their therapeutic potential. To tackle these challenges, Ces3 is synthesized by in situ growth of CeO2 nanozymes with positive charges on probiotic spores, facilitating electrostatic interactions with negatively charged pathogens and possessing a high reactive oxygen species (ROS) scavenging activity. Importantly, Ces3 can resist the harsh environment of the gastrointestinal tract. In mice with S. Typhimurium-infected acute gastroenteritis, Ces3 shows potent anti-S. Typhimurium activity, thereby alleviating the dissemination of S. Typhimurium into other organs. Additionally, owing to its O2 deprivation capacity, Ces3 promotes the proliferation of anaerobic probiotics, reshaping a healthy intestinal microbiota. This work demonstrates the promise of combining antibacterial, anti-inflammatory, and O2 content regulation properties for acute gastroenteritis therapy.
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