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QSAR Models for Human Carcinogenicity: An Assessment Based on Oral and Inhalation Slope Factors

机译:人类致癌性的QSAR模型:基于口腔和吸入坡因子的评估

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摘要

Carcinogenicity is a crucial endpoint for the safety assessment of chemicals and products. During the last few decades, the development of quantitative structure–activity relationship ((Q)SAR) models has gained importance for regulatory use, in combination with in vitro testing or expert-based reasoning. Several classification models can now predict both human and rat carcinogenicity, but there are few models to quantitatively assess carcinogenicity in humans. To our knowledge, slope factor (SF), a parameter describing carcinogenicity potential used especially for human risk assessment of contaminated sites, has never been modeled for both inhalation and oral exposures. In this study, we developed classification and regression models for inhalation and oral SFs using data from the Risk Assessment Information System (RAIS) and different machine learning approaches. The models performed well in classification, with accuracies for the external set of 0.76 and 0.74 for oral and inhalation exposure, respectively, and r2 values of 0.57 and 0.65 in the regression models for oral and inhalation SFs in external validation. These models might therefore support regulators in (de)prioritizing substances for regulatory action and in weighing evidence in the context of chemical safety assessments. Moreover, these models are implemented on the VEGA platform and are now freely downloadable online.
机译:致癌性是化学品和产品安全评估的关键终点。在过去的几十年中,定量结构 - 活动关系的发展((Q)SAR)模型对监管用途具有重要性,同时与体外测试或专家的推理相结合。几种分类模型现在可以预测人类和大鼠致癌性,但是很少有模型可以在人类中定量评估致癌性。据我们所知,斜坡因子(SF),描述致癌物潜力的参数,特别是对人类风险评估污染场地,从未用于吸入和口腔曝光。在这项研究中,我们使用来自风险评估信息系统(RAIS)和不同机器学习方法的数据开发了用于吸入和口腔SFS的分类和回归模型。该模型在分类中表现良好,用于口腔和吸入暴露的外部组0.76和0.74的精度,以及在外部验证中的口腔和吸入SFS的回归模型中的0.57和0.65的R2值。因此,这些模型可能支持(de)优先考虑监管行动的物质以及在化学安全评估的背景下称重证据。此外,这些模型在VEGA平台上实施,现在在线自由下载。

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