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本文引用的文献

1
Chemical and non-chemical stressors in a postpartum cohort through wristband and self report data: Links between increased chemical burden, economic, and racial stress.通过腕带和自我报告数据评估产后队列中的化学和非化学应激源:化学负荷增加、经济和种族压力之间的关系。
Environ Int. 2024 Sep;191:108976. doi: 10.1016/j.envint.2024.108976. Epub 2024 Aug 23.
2
Effect of bisphenol A on the neurological system: a review update.双酚 A 对神经系统的影响:综述更新。
Arch Toxicol. 2024 Jan;98(1):1-73. doi: 10.1007/s00204-023-03614-0. Epub 2023 Oct 19.
3
Maternal BPAF exposure impaired synaptic development and caused behavior abnormality in offspring.母体 BPAF 暴露损害了后代的突触发育并导致其行为异常。
Ecotoxicol Environ Saf. 2023 May;256:114859. doi: 10.1016/j.ecoenv.2023.114859. Epub 2023 Apr 5.
4
Eugenol exposure inhibits embryonic development and swim bladder formation in zebrafish.丁香酚暴露会抑制斑马鱼的胚胎发育和鳔形成。
Comp Biochem Physiol C Toxicol Pharmacol. 2023 Jun;268:109602. doi: 10.1016/j.cbpc.2023.109602. Epub 2023 Mar 9.
5
Neurotoxic mechanisms of triclosan: The antimicrobial agent emerging as a toxicant.三氯生的神经毒性机制:这种新兴的抗菌剂成为了一种有毒物质。
J Biochem Mol Toxicol. 2023 Feb;37(2):e23244. doi: 10.1002/jbt.23244. Epub 2022 Nov 10.
6
Exposure forecasting - ExpoCast - for data-poor chemicals in commerce and the environment.暴露预测 - ExpoCast - 适用于商业和环境中数据匮乏的化学品。
J Expo Sci Environ Epidemiol. 2022 Nov;32(6):783-793. doi: 10.1038/s41370-022-00492-z. Epub 2022 Nov 8.
7
Simulating toxicokinetic variability to identify susceptible and highly exposed populations.模拟毒代动力学变异性以识别易感和高暴露人群。
J Expo Sci Environ Epidemiol. 2022 Nov;32(6):855-863. doi: 10.1038/s41370-022-00491-0. Epub 2022 Nov 3.
8
Evaluation of a rapid, generic human gestational dose model.快速通用的人体妊娠剂量模型评估。
Reprod Toxicol. 2022 Oct;113:172-188. doi: 10.1016/j.reprotox.2022.09.004. Epub 2022 Sep 16.
9
Bayesian inference of chemical exposures from NHANES urine biomonitoring data.贝叶斯推断 NHANES 尿液生物监测数据中的化学暴露。
J Expo Sci Environ Epidemiol. 2022 Nov;32(6):833-846. doi: 10.1038/s41370-022-00459-0. Epub 2022 Aug 17.
10
Integrative exposomic, transcriptomic, epigenomic analyses of human placental samples links understudied chemicals to preeclampsia.整合外显子组、转录组和表观基因组学分析人类胎盘样本,将研究较少的化学物质与子痫前期联系起来。
Environ Int. 2022 Sep;167:107385. doi: 10.1016/j.envint.2022.107385. Epub 2022 Jun 30.

用于人体生物监测和神经毒性测试的优先物质环境神经活性化学物质清单:一个数据库和高通量毒物动力学方法。

The environmental neuroactive chemicals list of prioritized substances for human biomonitoring and neurotoxicity testing: A database and high-throughput toxicokinetics approach.

作者信息

Rager Julia E, Koval Lauren E, Hickman Elise, Ring Caroline, Teitelbaum Taylor, Cohen Todd, Fragola Giulia, Zylka Mark J, Engel Lawrence S, Lu Kun, Engel Stephanie M

机构信息

Department of Environmental Sciences and Engineering, Gillings School of Global Public Health, The University of North Carolina at Chapel Hill, 135 Dauer Drive, CB #7431, Chapel Hill, NC, 27599, USA; Institute for Environmental Health Solutions, Gillings School of Global Public Health, The University of North Carolina at Chapel Hill, 135 Dauer Drive, CB #7431, Chapel Hill, NC, 27599, USA; Center for Center for Environmental Medicine, Asthma and Lung Biology, School of Medicine, The University of North Carolina at Chapel Hill, 116 Manning Drive, CB #7325, Chapel Hill, NC, 27599, USA; Curriculum in Toxicology and Environmental Medicine, School of Medicine the University of North Carolina at Chapel Hill, Chapel Hill, 116 Manning Drive, CB #7325, Chapel Hill, NC, 27599, USA.

Department of Environmental Sciences and Engineering, Gillings School of Global Public Health, The University of North Carolina at Chapel Hill, 135 Dauer Drive, CB #7431, Chapel Hill, NC, 27599, USA; Institute for Environmental Health Solutions, Gillings School of Global Public Health, The University of North Carolina at Chapel Hill, 135 Dauer Drive, CB #7431, Chapel Hill, NC, 27599, USA.

出版信息

Environ Res. 2025 Feb 1;266:120537. doi: 10.1016/j.envres.2024.120537. Epub 2024 Dec 4.

DOI:10.1016/j.envres.2024.120537
PMID:39638029
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11753932/
Abstract

There is a diversity of chemicals to which humans are potentially exposed. Few of these chemicals have linked human biomonitoring data, and most have very limited neurotoxicity testing. Of particular concern are environmental exposures impacting children, who constitute a population of heightened susceptibility due to rapid neural growth and plasticity, yet lack biomonitoring data compared to other age/population subgroups. This study set out to develop a prioritized list of neuroactive substances, titled the Environmental NeuRoactIve CHemicals (ENRICH) list, to be used as a defined screening library in the evaluation of human biological samples, with emphasis on early childhood-relevant environmental exposures. In silico database mining approaches were used to prioritize chemicals based upon likelihood of neuroactivity, human exposure, and feasible detection in biological samples. Evidence of neuroactivity was compiled across in vitro high-throughput screening, animal testing, and/or human epidemiological findings. Chemicals were considered for their likelihood of human exposure and detection presence in biological samples (including metabolites), with additional evidence indicating presence within child-relevant products. The resulting list of 1827 chemicals were ranked using a Chemical Prioritization Index. Manual inclusion/exclusion criteria were employed for the top-ranking chemical candidates to ensure that chemicals were within the study's scope (i.e., environmentally relevant) and, for the purposes of biomonitoring, had properties amenable to mass spectrometry methods. These elements were combined to produce the ENRICH list of 250 top-ranking chemicals, spanning pesticides and those used in home maintenance, personal care, cleaning products, vehicles, arts and crafts, and consumer electronics, among other sources. Chemicals were additionally evaluated for high-throughput toxicokinetics to predict how much of a chemical and/or its metabolite(s) may reach urine, as an example biological matrix for practical use in biomonitoring efforts. This novel study couples databases and in silico-based predictions to prioritize chemicals in the environment with potential neurological impacts for future study.

摘要

人类有可能接触到多种多样的化学物质。这些化学物质中,很少有与人类生物监测数据相关联的,而且大多数化学物质的神经毒性测试非常有限。特别令人担忧的是影响儿童的环境暴露,由于儿童神经快速生长和具有可塑性,他们是一个易感性较高的人群,但与其他年龄/人群亚组相比,缺乏生物监测数据。本研究旨在制定一份神经活性物质的优先清单,即环境神经活性化学物质(ENRICH)清单,用作评估人类生物样本的特定筛查库,重点关注与幼儿相关的环境暴露。采用计算机数据库挖掘方法,根据神经活性可能性、人类暴露情况以及在生物样本中可行的检测情况对化学物质进行优先排序。综合了体外高通量筛选、动物试验和/或人类流行病学研究结果中的神经活性证据。考虑化学物质在人类暴露和生物样本(包括代谢物)中被检测到的可能性,以及其他表明其存在于与儿童相关产品中的证据。使用化学物质优先指数对最终得到的1827种化学物质清单进行排名。对排名靠前的化学候选物采用人工纳入/排除标准,以确保化学物质在研究范围内(即与环境相关),并且就生物监测而言,具有适合质谱分析方法的特性。将这些要素结合起来,生成了包含250种排名靠前的化学物质的ENRICH清单,这些化学物质涵盖农药以及用于家庭维护、个人护理、清洁产品、车辆、工艺品和消费电子产品等方面的化学物质。此外,还对化学物质进行了高通量毒代动力学评估,以预测有多少化学物质及其代谢物可能进入尿液,尿液是生物监测实际应用中的一种生物基质示例。这项新颖的研究将数据库与基于计算机的预测相结合,对环境中具有潜在神经影响的化学物质进行优先排序,以供未来研究。