Simultaneous detection and quantification of ciprofloxacin, doxycycline, and levofloxacin in municipal lake water via deep learning analysis of complex Raman spectra

IF 7.1 2区 环境科学与生态学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Environmental Technology & Innovation Pub Date : 2025-02-01 Epub Date: 2024-12-21 DOI:10.1016/j.eti.2024.103987
Quan Yuan , Xin-Ru Wen , Wei Liu , Zhang-Wen Ma , Jia-Wei Tang , Qing-Hua Liu , Muhammad Usman , Yu-Rong Tang , Xiang Wu , Liang Wang
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Abstract

In recent years, the misuse of antibiotics has led to severe pollution in water environments, with excessive residues in lake water damaging ecosystems and promoting the emergence of antibiotic-resistant bacteria. Therefore, rapid detection of antibiotic residues in the environment is crucial. This study introduces a novel method for the simultaneous quantification of mixed antibiotics in lake water using Surface-Enhanced Raman Scattering (SERS) combined with deep learning methods. To demonstrate the accuracy of our experiments, we tested four lake water samples collected from four distinct sampling points of an artificial lake in a municipal city in China. We independently analyzed each sample mixed with commonly used antibiotics, including ciprofloxacin, doxycycline, and levofloxacin. A non-negative elastic network was then employed to predict concentration ratios of mixed antibiotics in the lake water samples. The results showed that the established method can accurately quantify the ratios of individual antibiotics in mixed solutions at all four lake water sampling points. This approach facilitates the identification and quantification of antibiotics in lake water with simplicity and rapidity, exhibiting potential application for real-world monitoring of fluctuations of antibiotic residues in natural water systems.
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复拉曼光谱深度学习分析同时检测和定量城市湖水中环丙沙星、多西环素和左氧氟沙星
近年来,抗生素的滥用导致了水环境的严重污染,湖水中过量的抗生素残留破坏了生态系统,促进了耐药细菌的出现。因此,快速检测环境中的抗生素残留是至关重要的。本研究提出了一种结合深度学习方法的表面增强拉曼散射(SERS)同时定量湖泊水中混合抗生素的新方法。为了证明我们实验的准确性,我们测试了从中国一个城市的人工湖的四个不同采样点收集的四个湖泊水样。我们独立分析了每个样品与常用抗生素的混合,包括环丙沙星、多西环素和左氧氟沙星。然后采用非负弹性网络预测混合抗生素在湖泊水样中的浓度比。结果表明,所建立的方法能准确地定量测定4个湖泊水样点混合溶液中单个抗生素的比例。该方法简便、快速地促进了湖泊水体中抗生素的鉴定和定量,在自然水体中抗生素残留波动的实际监测中具有潜在的应用前景。
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来源期刊
Environmental Technology & Innovation
Environmental Technology & Innovation Environmental Science-General Environmental Science
CiteScore
14.00
自引率
4.20%
发文量
435
审稿时长
74 days
期刊介绍: Environmental Technology & Innovation adopts a challenge-oriented approach to solutions by integrating natural sciences to promote a sustainable future. The journal aims to foster the creation and development of innovative products, technologies, and ideas that enhance the environment, with impacts across soil, air, water, and food in rural and urban areas. As a platform for disseminating scientific evidence for environmental protection and sustainable development, the journal emphasizes fundamental science, methodologies, tools, techniques, and policy considerations. It emphasizes the importance of science and technology in environmental benefits, including smarter, cleaner technologies for environmental protection, more efficient resource processing methods, and the evidence supporting their effectiveness.
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