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Integration of QSAR and SAR methods for the mechanistic interpretation of predictive models for carcinogenicity

机译:结合QSAR和SAR方法对致癌性预测模型的机理解释

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摘要

The knowledge-based Toxtree expert system (SAR approach) was integrated with the statistically based counter propagation artificial neural network (CP ANN) model (QSAR approach) to contribute to a better mechanistic understanding of a carcinogenicity model for non-congeneric chemicals using Dragon descriptors and carcinogenic potency for rats as a response. The transparency of the CP ANN algorithm was demonstrated using intrinsic mapping technique specifically Kohonen maps. Chemical structures were represented by Dragon descriptors that express the structural and electronic features of molecules such as their shape and electronic surrounding related to reactivity of molecules. It was illustrated how the descriptors are correlated with particular structural alerts (SAs) for carcinogenicity with recognized mechanistic link to carcinogenic activity. Moreover, the Kohonen mapping technique enables one to examine the separation of carcinogens and non-carcinogens (for rats) within a family of chemicals with a particular SA for carcinogenicity. The mechanistic interpretation of models is important for the evaluation of safety of chemicals.
机译:基于知识的Toxtree专家系统(SAR方法)与基于统计的逆向传播人工神经网络(CP ANN)模型(QSAR方法)集成在一起,从而有助于使用Dragon描述符更好地理解非同类化学品的致癌性模型对大鼠的致癌作用。使用固有映射技术(特别是Kohonen映射)证明了CP ANN算法的透明度。 Dragon描述符代表化学结构,这些描述符表达分子的结构和电子特征,例如其形状和与分子反应性有关的电子周围环境。说明了描述符如何与致癌性的特定结构警报(SA)相关联,并与致癌活性之间建立了公认的机械联系。此外,Kohonen作图技术使人们能够检查具有特定SA致癌性的一系列化学物质中致癌物和非致癌物(对于大鼠)的分离。模型的机械解释对于评估化学品安全性很重要。

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