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Published on: September 25, 2017
Quantitative structure-activity relationship modelling of the carcinogenic risk of nitroso compounds using regression
A M Helguera1, G Pérez-Machado, M N D S Cordeiro
1Department of Chemistry, Central University of Las Villas, Santa Clara, Villa Clara, Cuba. aliuskamhelguera@yahoo.es
Abstract:
Worldwide, legislative and governmental efforts are focusing on establishing simple screening tools for identifying those chemicals most likely to cause adverse effects without experimentally testing all chemicals of regulatory concern. This is because even the most basic biological testing of compounds of concern, apart from requiring a huge number of test animals, would be neither resource nor time effective. Thus, alternative approaches such as the one proposed here, quantitative structure-activity relationship (QSAR) modelling, are increasingly being used for identifying the potential health hazards and subsequent regulation of new industrial chemicals. This paper follows up on our earlier work that demonstrated the use of the TOPological Substructural MOlecular DEsign (TOPS-MODE) approach to QSAR modelling for predictions of the carcinogenic potency of nitroso compounds. The data set comprises 56 nitroso compounds which have been bio-assayed in female rats and administered by the oral water route. The QSAR model was able to account for about 81% of the variance in the experimental activity and exhibited good cross-validation statistics. A reasonable interpretation of the TOPS-MODE descriptors was achieved by means of bond contributions, which in turn afforded the recognition of structural alerts (SAs) regarding carcinogenicity. A comparison of the SAs obtained from different data sets showed that experimental factors, such as the sex and the oral administration route, exert a major influence on the carcinogenicity of nitroso compounds. The present and previous QSAR models combined together provide a reliable tool for estimating the carcinogenic potency of yet untested nitroso compounds and they should allow the identification of SAs, which can be used as the basis of prediction systems for the rodent carcinogenicity of these compounds.
Insights
Quantitative structure-activity relationship (QSAR) modeling predicts nitroso compound carcinogenicity. This approach identifies structural alerts for safer chemical regulation, reducing animal testing.
Area of Science:
- Computational toxicology
- Medicinal chemistry
- Environmental health
Background:
- Regulatory bodies require efficient methods to identify hazardous chemicals.
- Traditional animal testing is resource-intensive and time-consuming.
- Quantitative structure-activity relationship (QSAR) modeling offers an alternative for hazard identification.
Purpose of the Study:
- To develop and validate a QSAR model for predicting the carcinogenic potency of nitroso compounds.
- To identify structural alerts associated with carcinogenicity in nitroso compounds.
- To assess the influence of experimental factors on carcinogenicity predictions.
Main Methods:
- Utilized the TOPological Substructural MOlecular DEsign (TOPS-MODE) approach for QSAR modeling.
- Developed a model based on a dataset of 56 bio-assayed nitroso compounds in female rats (oral water route).
- Analyzed TOPS-MODE descriptors through bond contributions to identify structural alerts.
Main Results:
- The QSAR model explained approximately 81% of the variance in experimental carcinogenic activity.
- The model demonstrated good cross-validation statistics, indicating reliability.
- Identified specific structural alerts linked to carcinogenicity, influenced by factors like animal sex and administration route.
Conclusions:
- Combined QSAR models provide a reliable tool for estimating the carcinogenic potency of untested nitroso compounds.
- The identified structural alerts can form the basis for predictive systems for rodent carcinogenicity.
- This approach supports regulatory efforts to screen chemicals efficiently and reduce animal testing.
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