生物累积
益生菌
摄入
铀
体内
氧化应激
化学
毒性
肾毒性
环境化学
水质
贫化铀
环境毒理学
食品科学
微生物学
胃肠道
化学毒性
生物
肠道菌群
排泄
生物利用度
食品安全
环境卫生
公共卫生
地穴
污染
肠道通透性
毒理
人类健康
重金属
Mercury(编程语言)
毒物动力学
戒毒(替代医学)
粪便
作者
Haidong Li,Feifei Zhang,Chenya Wang,Zhencun Cui,Yina Liu,Zhenhua Song,Lingyan Yuan,Xiaolei Chen,Yumin Wu,WangSuo WU,Longlong Tian
标识
DOI:10.1016/j.envint.2026.110127
摘要
Uranium (U) contamination of water sources, arising from anthropogenic activities such as mining and nuclear fallout, poses a significant global threat to water quality and public health. Ingestion of U-contaminated water and food results in bioaccumulation, primarily within the kidneys and bones, leading to severe nephrotoxicity and potential long-term health consequences. Addressing this challenge, we present a novel bio-intervention strategy leveraging a genetically engineered probiotic for the prevention of U absorption at its primary entry point-the gastrointestinal tract. We engineeredEscherichia coliNissle 1917 (EcN) to express a high-affinity uranyl-binding protein (U09), generating the EcN-U strain. EcN-U sequestered soluble uranyl ions (UO22+) within the gut lumen via selective and efficient binding, leading to fecal excretion and prevention of systemic absorption. In a murine model of acuteUO22+ exposure, EcN-U pre-treatment significantly enhanced survival rates. Furthermore, in chronic exposure models utilizing mice, rats, and beagle dogs, EcN-U pre-treatment demonstrably reduced U accumulation in target organs by approximately 80%. Concurrently, this intervention alleviated oxidative stress biomarkers, restored gut microbiota homeostasis, and mitigated intestinal histopathological damage. Our findings establish engineered probiotics as a pragmatic and potent strategy for environmental health protection, offering a proactive and viable solution for public health risk mitigation associated with waterborne uranium contamination.
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