Estimated exposure of flame-retardants in Spanish toddlers: a modelling approach

IF 7.6 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Roser Esplugas, Joaquim Rovira, Helena García-Cortés, Vikas Kumar, Montse Mari, Antonio F. Hernández, Marina Lacasaña-Navarro, José L. Domingo, Marta Schuhmacher
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引用次数: 0

Abstract

Flame retardants (FRs) are chemicals used to reduce the flammability of materials and are commonly found in consumer products such as furniture and electronics. These substances can migrate from products (e.g., furniture foam and electronic devices) into indoor environments such as air and dust and may pose risk to human health by direct exposure. Some FRs are known endocrine disruptors capable of affecting thyroid hormone homeostasis, neurodevelopment, behaviour and reproduction. Thus, there is a need to understand the emission, transport, sorption, and distribution of FRs. In line with the 3R principles (Reduce, Replace and Refine) used in scientific research and risk assessment, modelling has become a valuable tool for elucidating and predicting the emissions, behaviour and fate of semi-volatile organic compounds (SVOCs) in indoor environments. i-SVOC is a software application designed for dynamic modelling of these chemicals covering indoor compartments contributing to a more efficient evaluation of indoor pollution. This study had two main objectives. First, we aimed to develop and validate a model to estimate the concentrations of two FRs, tris(chloroisopropyl)-phosphate (TClPP) and triphenyl phosphate (TPhP) in Spanish indoor environments. Second, we sought to estimate the indoor levels and exposure to both FRs in Spain by modelling environmental data from a toddler Spanish birth cohort (GENEIDA). Four scenarios were simulated using the i-SVOC software, considering variation in ventilation (high/low) and emissions factors (high/medium). This study demonstrated the ability of i-SVOC model to estimate TClPP and TPhP concentrations in air and dust. The application of the model to environmental data from the GENEIDA cohort showed statistically similar mean/median values to those experimentally collected, leading to comparable estimates of FR-exposure. Furthermore, the non-carcinogenic risk from exposure to TClPP and TPhP in toddlers were assessed. However, no correlation was found between the estimated exposure levels and the measured concentrations of FR metabolites (bis(1-chloro-2-propyl) phosphate -BClPP- and diphenyl phosphate -DPhP-) in the cohort toddlers. This discrepancy is likely due to variability in environmental characteristics and individual differences in metabolite concentrations.

Abstract Image

估计西班牙幼儿接触阻燃剂:建模方法
阻燃剂(FRs)是用于降低材料可燃性的化学物质,通常用于家具和电子产品等消费品中。这些物质可以从产品(例如家具泡沫和电子设备)迁移到空气和灰尘等室内环境中,并可能通过直接接触对人体健康构成风险。一些fr是已知的内分泌干扰物,能够影响甲状腺激素稳态、神经发育、行为和生殖。因此,有必要了解FRs的排放、运输、吸收和分布。根据科学研究和风险评估中使用的3R原则(减少、替代和精炼),建模已成为阐明和预测室内环境中半挥发性有机化合物(SVOCs)的排放、行为和命运的宝贵工具。i-SVOC是一个软件应用程序,设计用于这些化学物质覆盖室内隔间的动态建模,有助于更有效地评估室内污染。这项研究有两个主要目的。首先,我们旨在开发并验证一个模型,以估计西班牙室内环境中三(氯异丙基)磷酸(TClPP)和磷酸三苯(TPhP)两种FRs的浓度。其次,我们试图通过模拟西班牙幼儿出生队列(GENEIDA)的环境数据来估计西班牙两种FRs的室内水平和暴露。使用i-SVOC软件模拟了四种场景,考虑了通风(高/低)和排放因子(高/中)的变化。本研究证明了i-SVOC模型能够估算空气和粉尘中TClPP和TPhP的浓度。将该模型应用于GENEIDA队列的环境数据显示,统计上的平均值/中位数与实验收集的数据相似,从而得出可比较的fr暴露估计值。此外,对幼儿暴露于TClPP和TPhP的非致癌风险进行了评估。然而,在队列幼儿中,没有发现估计暴露水平与测量的FR代谢物(二(1-氯-2-丙基)磷酸- bclpp -和磷酸二苯酯- dphp -)浓度之间的相关性。这种差异可能是由于环境特征的可变性和代谢物浓度的个体差异。
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来源期刊
Environmental Pollution
Environmental Pollution 环境科学-环境科学
CiteScore
16.00
自引率
6.70%
发文量
2082
审稿时长
2.9 months
期刊介绍: Environmental Pollution is an international peer-reviewed journal that publishes high-quality research papers and review articles covering all aspects of environmental pollution and its impacts on ecosystems and human health. Subject areas include, but are not limited to: • Sources and occurrences of pollutants that are clearly defined and measured in environmental compartments, food and food-related items, and human bodies; • Interlinks between contaminant exposure and biological, ecological, and human health effects, including those of climate change; • Contaminants of emerging concerns (including but not limited to antibiotic resistant microorganisms or genes, microplastics/nanoplastics, electronic wastes, light, and noise) and/or their biological, ecological, or human health effects; • Laboratory and field studies on the remediation/mitigation of environmental pollution via new techniques and with clear links to biological, ecological, or human health effects; • Modeling of pollution processes, patterns, or trends that is of clear environmental and/or human health interest; • New techniques that measure and examine environmental occurrences, transport, behavior, and effects of pollutants within the environment or the laboratory, provided that they can be clearly used to address problems within regional or global environmental compartments.
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