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水环境中的抗菌转化产物:全球出现情况、生态毒理学风险和抗生素耐药性的潜在威胁。

Antimicrobial Transformation Products in the Aquatic Environment: Global Occurrence, Ecotoxicological Risks, and Potential of Antibiotic Resistance.

机构信息

Department of Aquatic Sciences and Assessment, Swedish University of Agricultural Sciences (SLU), Uppsala SE-75007, Sweden.

Department of Cell Toxicology, Helmholtz Centre for Environmental Research, UZ, 04318 Leipzig, Germany.

出版信息

Environ Sci Technol. 2023 Jul 4;57(26):9474-9494. doi: 10.1021/acs.est.2c09854. Epub 2023 Jun 19.

DOI:10.1021/acs.est.2c09854
PMID:37335844
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10324322/
Abstract

The global spread of antimicrobial resistance (AMR) is concerning for the health of humans, animals, and the environment in a One Health perspective. Assessments of AMR and associated environmental hazards mostly focus on antimicrobial parent compounds, while largely overlooking their transformation products (TPs). This review lists antimicrobial TPs identified in surface water environments and examines their potential for AMR promotion, ecological risk, as well as human health and environmental hazards using models. Our review also summarizes the key transformation compartments of TPs, related pathways for TPs reaching surface waters and methodologies for studying the fate of TPs. The 56 antimicrobial TPs covered by the review were prioritized via scoring and ranking of various risk and hazard parameters. Most data on occurrences to date have been reported in Europe, while little is known about antibiotic TPs in Africa, Central and South America, Asia, and Oceania. Occurrence data on antiviral TPs and other antibacterial TPs are even scarcer. We propose evaluation of structural similarity between parent compounds and TPs for TP risk assessment. We predicted a risk of AMR for 13 TPs, especially TPs of tetracyclines and macrolides. We estimated the ecotoxicological effect concentrations of TPs from the experimental effect data of the parent chemical for bacteria, algae and water fleas, scaled by potency differences predicted by quantitative structure-activity relationships (QSARs) for baseline toxicity and a scaling factor for structural similarity. Inclusion of TPs in mixtures with their parent increased the ecological risk quotient over the threshold of one for 7 of the 24 antimicrobials included in this analysis, while only one parent had a risk quotient above one. Thirteen TPs, from which 6 were macrolide TPs, posed a risk to at least one of the three tested species. There were 12/21 TPs identified that are likely to exhibit a similar or higher level of mutagenicity/carcinogenicity, respectively, than their parent compound, with tetracycline TPs often showing increased mutagenicity. Most TPs with increased carcinogenicity belonged to sulfonamides. Most of the TPs were predicted to be mobile but not bioaccumulative, and 14 were predicted to be persistent. The six highest-priority TPs originated from the tetracycline antibiotic family and antivirals. This review, and in particular our ranking of antimicrobial TPs of concern, can support authorities in planning related intervention strategies and source mitigation of antimicrobials toward a sustainable future.

摘要

从“同一健康”角度来看,抗微生物药物耐药性(AMR)在全球范围内的传播对人类、动物和环境的健康构成了威胁。对抗微生物药物耐药性和相关环境危害的评估主要集中在抗微生物母体化合物上,而在很大程度上忽略了它们的转化产物 (TPs)。本综述列出了在地表水环境中发现的抗微生物转化产物,并使用模型评估了它们促进抗微生物药物耐药性、生态风险以及对人类健康和环境危害的潜力。我们的综述还总结了 TPs 的关键转化区室、TPs 到达地表水的相关途径以及研究 TPs 命运的方法。通过对各种风险和危害参数进行评分和排序,对综述中涵盖的 56 种抗微生物 TPs 进行了优先级排序。迄今为止,有关这些 TPs 的出现数据主要在欧洲报告,而关于非洲、中美洲和南美洲、亚洲和大洋洲的抗生素 TPs 的信息则很少。有关抗病毒 TPs 和其他抗菌 TPs 的出现数据则更为稀少。我们建议评估母体化合物和 TPs 之间的结构相似性,以进行 TPs 的风险评估。我们预测了 13 种 TPs 存在抗微生物药物耐药性风险,尤其是四环素类和大环内酯类 TPs。我们根据定量构效关系 (QSAR) 预测的效力差异,从母体化学物质对细菌、藻类和水蚤的实验效应数据中估算了 TPs 的生态毒理学效应浓度,并用结构相似性的缩放因子进行了基线毒性的缩放。将 TPs 与母体化合物混合,会使这 24 种分析中 7 种抗微生物剂的生态风险商超过 1,而只有 1 种母体化合物的风险商超过 1。有 13 种 TPs,其中 6 种是大环内酯类 TPs,对 3 种测试物种中的至少一种构成了风险。在确定的 21 种 TPs 中,有 12 种可能表现出与母体化合物相似或更高水平的致突变性/致癌性,其中四环素类 TPs 通常表现出更高的致突变性。具有更高致癌性的 TPs 多属于磺胺类药物。大多数 TPs 被预测为可移动但不可生物累积,14 种 TPs 被预测为持久性。排名最高的 6 种 TPs 来自四环素类抗生素家族和抗病毒药物。本综述,特别是我们对抗微生物关注的 TPs 的排名,可以为当局规划相关干预策略和减少抗生素的源头提供支持,以实现可持续的未来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebf2/10324322/f7d41517400a/es2c09854_0004.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebf2/10324322/f7d41517400a/es2c09854_0004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebf2/10324322/3fee470b24b3/es2c09854_0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebf2/10324322/d594b07948bf/es2c09854_0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebf2/10324322/7464338a5eda/es2c09854_0008.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebf2/10324322/77004872d2df/es2c09854_0003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebf2/10324322/f7d41517400a/es2c09854_0004.jpg

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