利用五项高水平进展的高效效应导向分析:批判性评论。

IF 11.3 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Jifu Liu, Tongtong Xiang, Xue-Chao Song, Shaoqing Zhang, Qi Wu, Jie Gao, Meilin Lv, Chunzhen Shi, Xiaoxi Yang, Yanna Liu, Jianjie Fu, Wei Shi*, Mingliang Fang, Guangbo Qu*, Hongxia Yu and Guibin Jiang, 
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引用次数: 0

摘要

有机污染物在环境中无处不在,越来越多的证据明确表明,有机污染物与水生毒性、疾病和死亡率上升有关,突出表明了有机污染物对生态安全和环境健康的重大影响。样品混合物的复杂成分和潜在有毒物质的不确定物理化学特征,为识别环境样品中的主要有毒物质带来了挑战。效应导向分析(EDA)可以在环境样本中发现的关键毒物与相关危害之间建立联系,从而识别毒物,简化研究工作并为管理行动提供信息。然而,EDA 的发展受到以下因素的制约:环境样本的提取和分馏不足、生物测定终点有限且与高阶影响之间的联系不明、化学分析(即高分辨率质谱法,HRMS)的覆盖范围有限以及生物测定与化学分析之间缺乏有效联系。本综述提出了提高 EDA 效率以应对这些挑战的五大进展:(1) 多种吸附剂,以全面覆盖化学提取;(2) 高分辨率微分馏和多维分馏,以实现精细分馏;(3) 强大的体内/体外生物测定和 omics;(4) HRMS 分析的高性能配置;(5) 化学、数据和知识驱动的方法,以简化毒物鉴定和验证。根据我们的设想,未来的 EDA 将在定量 omics、尖端多维微分馏和超高性能 MS 的发展基础上整合大数据和人工智能,以识别环境危害因素,为更广泛的环境治理服务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

High-Efficiency Effect-Directed Analysis Leveraging Five High Level Advancements: A Critical Review

High-Efficiency Effect-Directed Analysis Leveraging Five High Level Advancements: A Critical Review

High-Efficiency Effect-Directed Analysis Leveraging Five High Level Advancements: A Critical Review

Organic contaminants are ubiquitous in the environment, with mounting evidence unequivocally connecting them to aquatic toxicity, illness, and increased mortality, underscoring their substantial impacts on ecological security and environmental health. The intricate composition of sample mixtures and uncertain physicochemical features of potential toxic substances pose challenges to identify key toxicants in environmental samples. Effect-directed analysis (EDA), establishing a connection between key toxicants found in environmental samples and associated hazards, enables the identification of toxicants that can streamline research efforts and inform management action. Nevertheless, the advancement of EDA is constrained by the following factors: inadequate extraction and fractionation of environmental samples, limited bioassay endpoints and unknown linkage to higher order impacts, limited coverage of chemical analysis (i.e., high-resolution mass spectrometry, HRMS), and lacking effective linkage between bioassays and chemical analysis. This review proposes five key advancements to enhance the efficiency of EDA in addressing these challenges: (1) multiple adsorbents for comprehensive coverage of chemical extraction, (2) high-resolution microfractionation and multidimensional fractionation for refined fractionation, (3) robust in vivo/vitro bioassays and omics, (4) high-performance configurations for HRMS analysis, and (5) chemical-, data-, and knowledge-driven approaches for streamlined toxicant identification and validation. We envision that future EDA will integrate big data and artificial intelligence based on the development of quantitative omics, cutting-edge multidimensional microfractionation, and ultraperformance MS to identify environmental hazard factors, serving for broader environmental governance.

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来源期刊
环境科学与技术
环境科学与技术 环境科学-工程:环境
CiteScore
17.50
自引率
9.60%
发文量
12359
审稿时长
2.8 months
期刊介绍: Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences. Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.
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