Tracking antibiotic resistance gene pollution from different sources using machine-learning classification.
Li-Guan LiXiaole YinTong ZhangPublished in: Microbiome (2018)
We demonstrated for the first time that the developed source-tracking platform when coupling with proper experiment design and efficient metagenomic analysis tools will have significant implications for assessing AMR pollution. Following predicted source contribution status, risk ranking of different sources in ARG dissemination will be possible, thereby paving the way for establishing priority in mitigating ARG spread and designing effective control strategies.
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