College of the Environment & Ecology, Xiamen University, Xiamen 361102, China.
Xiamen Cancer Center, The First Affiliated Hospital of Xiamen University, Xiamen 361009, China.
J Hazard Mater. 2023 Feb 5;443(Pt A):130177. doi: 10.1016/j.jhazmat.2022.130177. Epub 2022 Oct 12.
Disinfection plays an essential role in waterborne pathogen control and disease prevention, especially during the COVID-19 pandemic. Catalyst-free solar light/periodate (PI) system has recently presented great potential in water disinfection, whereas the in-depth chemical and microbiological mechanisms for efficient bacterial inactivation remain unclear. Our work delineated firstly the critical role of singlet oxygen, instead of reported hydroxyl radicals and superoxide radicals, in dominating bacterial inactivation by the PI/simulated sunlight (SSL) system. Multi-evidence demonstrated the prominent disinfection performance of this system for Staphylococcus aureus in terms of culturability (> 6 logs CFU), cellular integrity, and metabolic activity. Particularly, the excellent intracellular DNA removal (> 95%) indicated that PI/SSL system may function as a selective disinfection strategy to diminish bacterial culturability without damaging the cell membrane. The PI/SSL system could also effectively inhibit bacterial regrowth for > 5 days and horizontal gene transfer between E. coli genera. Nontargeted metabolomic analysis suggested that PI/SSL system inactivated bacteria by triggering the accumulation of intracellular reactive oxygen species and the depletion of reduced glutathione. Additionally, the PI/SSL system could accomplish simultaneous micropollutant removal and bacterial inactivation, suggesting its versatility in water decontamination. Overall, this study deciphers more comprehensive antibacterial mechanisms of this environmentally friendly disinfection system, facilitating the technical development and application of the selective disinfection strategy in environmental pathogen control.
消毒在控制水生病原体和预防疾病方面起着至关重要的作用,特别是在 COVID-19 大流行期间。无催化剂的太阳能/过碘酸盐(PI)系统最近在水消毒方面显示出巨大的潜力,然而,高效细菌灭活的深入化学和微生物学机制仍不清楚。我们的工作首先阐明了单线态氧而不是报道的羟基自由基和超氧自由基在 PI/模拟阳光(SSL)系统主导细菌灭活中的关键作用。多种证据表明,该系统对金黄色葡萄球菌具有出色的消毒性能,表现在可培养性(>6 对数 CFU)、细胞完整性和代谢活性方面。特别是,优异的细胞内 DNA 去除(>95%)表明,PI/SSL 系统可能作为一种选择性消毒策略,在不破坏细胞膜的情况下降低细菌的可培养性。PI/SSL 系统还可以有效抑制细菌在 5 天以上的再生和大肠杆菌属之间的水平基因转移。非靶向代谢组学分析表明,PI/SSL 系统通过触发细胞内活性氧的积累和还原型谷胱甘肽的耗竭来灭活细菌。此外,PI/SSL 系统可以同时去除微污染物和灭活细菌,表明其在水净化方面的多功能性。总的来说,这项研究揭示了这种环保消毒系统更全面的抗菌机制,为选择性消毒策略在环境病原体控制中的技术发展和应用提供了便利。