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Human Pluripotent Stem Cell Based Developmental Toxicity Assays for Chemical Safety Screening and Systems Biology Data Generation
Published on: June 17, 2015
Topological structural alerts modulations of mammalian cell mutagenicity for halogenated derivatives
A Pérez-Garrido1, F Girón-Rodríguez, A Morales Helguera
1a Cátedra de Ingeniería y Toxicología Ambiental, Universidad Católica de San Antonio , Guadalupe , Murcia , Spain .
Abstract:
Genotoxicity is a key toxicity endpoint for current regulatory requirements regarding new and existing chemicals. However, genotoxicity testing is time-consuming and costly, and involves the use of laboratory animals. This has motivated the development of computational approaches, designed to predict genotoxicity without the need to conduct laboratory tests. Currently, many existing computational methods, like quantitative structure-activity relationship (QSAR) models, provide limited information about the possible mechanisms involved in mutagenicity or predictions based on structural alerts (SAs) do not take statistical models into account. This paper describes an attempt to address this problem by using the TOPological Substructural MOlecular Design (TOPS-MODE) approach to develop and validate improved QSAR models for predicting the mutagenicity of a range of halogenated derivatives. Our most predictive model has an accuracy of 94.12%, exhibits excellent cross-validation and external set statistics. A reasonable interpretation of the model in term of SAs was achieved by means of bond contributions to activity. The results obtained led to the following conclusions: primary halogenated derivatives are more mutagenic than secondary ones; and substitution of chlorine by bromine increases mutagenicity while polyhalogenation decreases activity. The paper demonstrates the potential of the TOPS-MODE approach in developing QSAR models for identifying structural alerts for mutagenicity, combining high predictivity with relevant mechanistic interpretation.
Insights
Computational models can now predict chemical mutagenicity, saving time and animal use. The TOPS-MODE approach offers high accuracy and mechanistic insights into genotoxicity for halogenated compounds.
Area of Science:
- Computational toxicology
- Medicinal chemistry
- Chemical risk assessment
Background:
- Genotoxicity is a critical regulatory endpoint for chemical safety.
- Current testing is slow, expensive, and uses animal models.
- Existing computational methods offer limited mechanistic insight into mutagenicity.
Purpose of the Study:
- To develop and validate improved quantitative structure-activity relationship (QSAR) models for predicting chemical mutagenicity.
- To utilize the TOPological Substructural MOlecular Design (TOPS-MODE) approach for enhanced predictive accuracy.
- To provide mechanistic interpretation of mutagenicity based on structural features.
Main Methods:
- Development of QSAR models using the TOPS-MODE approach.
- Prediction of mutagenicity for a series of halogenated derivatives.
- Validation of models using cross-validation and external datasets.
- Analysis of bond contributions to activity for mechanistic interpretation.
Main Results:
- The most predictive QSAR model achieved 94.12% accuracy.
- The model demonstrated excellent cross-validation and external set statistics.
- Mechanistic interpretation identified primary halogenated derivatives as more mutagenic than secondary.
- Bromine substitution increased mutagenicity, while polyhalogenation decreased it.
Conclusions:
- The TOPS-MODE approach effectively develops predictive QSAR models for mutagenicity.
- The models provide valuable mechanistic insights into genotoxicity.
- This computational strategy reduces reliance on animal testing for chemical safety assessment.
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