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草莓种植工人尿液中氯氟氰菊酯代谢物的排泄时间进程及与克菌丹共暴露的影响。

Excretion time courses of lambda-cyhalothrin metabolites in the urine of strawberry farmworkers and effect of coexposure with captan.

机构信息

Department of Environmental and Occupational Health, Chair in Toxicological Risk Assessment and Management, and Public Health Research Center (CReSP), University of Montreal, Roger-Gaudry Building, Main Station, P.O. Box 6128, Montreal, QC, U436H3C 3J7, Canada.

Department of Chemistry, University of Montreal, MIL Building, Main Station, P.O. Box 6128, Montreal, QC, H3C 3J7, Canada.

出版信息

Arch Toxicol. 2022 Sep;96(9):2465-2486. doi: 10.1007/s00204-022-03310-5. Epub 2022 May 14.

Abstract

There are limited literature data on the impact of coexposure on the toxicokinetics of pesticides in agricultural workers. Using the largely employed pyrethroid lambda-cyhalothrin (LCT) and fungicide captan as sentinel pesticides, we compared individual temporal profiles of biomarkers of exposure to LCT in strawberry field workers following an application episode of LCT alone or in coexposure with captan. Participants provided all urine voided over a 3-day period after an application of a pesticide formulation containing LCT alone (E1) or LCT mixed with captan (E2), and in some cases following re-entry in treated field (E3). Pyrethroid metabolites were measured in all urine samples, in particular 3-(2-chloro-3,3,3-trifluoroprop-1-en-1-yl)-2,2-dimethyl-cyclopropanecarboxylic acid (CFMP), 3-phenoxybenzoic acid (3-PBA), and 4-hydroxy-3-phenoxybenzoic acid (4-OH3PBA). There were no obvious differences in individual concentration-time profiles and cumulative excretion of metabolites (CFMP, 3-PBA, 4-OH3BPA) after exposure to LCT alone or in combination with captan. For most workers and exposure scenarios, CFMP was the main metabolite excreted, but time courses of CFMP in urine did not always follow that of 3-PBA and 4-OH3BPA. Given that the latter metabolites are common to other pyrethroids, this suggests that some workers were coexposed to pyrethroids other than LCT. For several workers and exposure scenarios E1 and E2, values of CFMP increased in the hours following spraying. However, for many pesticide operators, other peaks of CFMP were observed at later times, indicating that tasks other than spraying of LCT-containing formulations contributed to this increased exposure. These tasks were mainly handling/cleaning of equipment used for spraying (tractor or sprayer) or work/inspection in LCT-treated field according to questionnaire responses. Overall, this study provided novel excretion time course data for LCT metabolites valuable for interpretation of biomonitoring data in workers, but also showed that coexposure was not a major determinant of variability in exposure biomarker levels. Our analysis also pointed out the importance of measuring specific metabolites.

摘要

关于共存暴露对农业工人中杀虫剂毒代动力学的影响,文献资料有限。本研究使用广泛应用的拟除虫菊酯 lambda-氯氰菊酯 (LCT) 和杀菌剂克菌丹作为指示性杀虫剂,比较了单独使用 LCT 或与克菌丹共同暴露后草莓田工人中 LCT 暴露生物标志物的个体时间分布。参与者在单独使用 LCT 的农药制剂(E1)或 LCT 与克菌丹混合(E2)施药后,提供了施药后 3 天内排出的所有尿液,并在某些情况下在处理过的田地中重新进入后(E3)提供尿液。在所有尿液样本中都测量了拟除虫菊酯代谢物,特别是 3-(2-氯-3,3,3-三氟丙烯-1-基)-2,2-二甲基环丙烷羧酸(CFMP)、3-苯氧基苯甲酸(3-PBA)和 4-羟基-3-苯氧基苯甲酸(4-OH3PBA)。单独暴露于 LCT 或与克菌丹联合暴露后,代谢物(CFMP、3-PBA、4-OH3BPA)的个体浓度-时间曲线和累积排泄没有明显差异。对于大多数工人和暴露情况,CFMP 是主要排泄的代谢物,但 CFMP 在尿液中的时间过程并不总是与 3-PBA 和 4-OH3BPA 一致。由于后两种代谢物是其他拟除虫菊酯的共同代谢物,这表明一些工人同时接触到除 LCT 以外的其他拟除虫菊酯。对于一些工人和暴露情况,E1 和 E2 中的 CFMP 值在喷雾后几个小时内增加。然而,对于许多农药操作人员,在稍后的时间观察到 CFMP 的其他峰值,表明除了喷雾含 LCT 的制剂外,其他任务也导致了这种暴露增加。这些任务主要是处理/清洁用于喷雾的设备(拖拉机或喷雾器)或在 LCT 处理过的田地中工作/检查,根据问卷回答。总的来说,这项研究为解释工人中生物监测数据提供了 LCT 代谢物的新排泄时间曲线数据,但也表明共存暴露不是暴露生物标志物水平变异性的主要决定因素。我们的分析还指出了测量特定代谢物的重要性。

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