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State of the art in the application of QSAR techniques for predicting mixture toxicity in environmental risk assessment

机译:QSAR技术在环境风险评估中预测混合物毒性的技术发展水平

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摘要

The focus of regulatory chemical risk assessment has been mainly placed on single chemicals rather than mixtures. However, living organisms and the environment might be exposed to mixtures of chemicals. Many scientific studies have revealed that mixture toxicity can arise from the combined effects of components present at levels below their individual no-effect concentrations. Predictive approaches will be essential for estimating mixture toxicity, as the number of possible mixtures is extremely large. Although predictive models are virtually indispensable for estimating mixture toxicity for both scientific and regulatory purposes, risk assessors encounter substantial difficulties in using conventional models, mainly due to the lack of information on the modes of toxic action of the mixture constituents. Alternative models that use different information instead of the modes of action thus need to be developed. The objective of this study is to investigate the state of the art in predictive models based on quantitative structure-activity relationship techniques for estimating the toxicity of mixture components, and to identify future challenges hindering more reliable mixture risk assessment for environmental risk assessment. Alternative models need to be developed not only to overcome the limitations of conventional models, but also to improve their performance.
机译:监管化学品风险评估的重点主要放在单一化学品而不是混合物上。但是,生物和环境可能会暴露于化学混合物中。许多科学研究表明,混合物的毒性可能是由低于其各自的无效浓度的组分的联合作用引起的。由于可能的混合物数量非常多,因此预测方法对于估计混合物毒性至关重要。尽管预测模型实际上对于科学和法规目的都不可缺少的混合物毒性评估,但风险评估人员在使用常规模型时会遇到很多困难,这主要是由于缺乏有关混合物成分毒性作用方式的信息。因此需要开发使用不同信息而不是作用方式的替代模型。这项研究的目的是研究基于定量结构-活性关系技术的预测模型的最新状态,以估计混合物成分的毒性,并确定阻碍更可靠混合物风险评估的未来挑战,以进行环境风险评估。需要开发替代模型,不仅要克服常规模型的局限性,而且要提高其性能。

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