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Integrated Computational Solution for Predicting Skin Sensitization Potential of Molecules

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  • Konda Leela Sarath Kumar
  • Sujit R Tangadpalliwar
  • Aarti Desai
  • Vivek K Singh
  • Abhay Jere

Abstract

Introduction: Skin sensitization forms a major toxicological endpoint for dermatology and cosmetic products. Recent ban on animal testing for cosmetics demands for alternative methods. We developed an integrated computational solution (SkinSense) that offers a robust solution and addresses the limitations of existing computational tools i.e. high false positive rate and/or limited coverage. Results: The key components of our solution include: QSAR models selected from a combinatorial set, similarity information and literature-derived sub-structure patterns of known skin protein reactive groups. Its prediction performance on a challenge set of molecules showed accuracy = 75.32%, CCR = 74.36%, sensitivity = 70.00% and specificity = 78.72%, which is better than several existing tools including VEGA (accuracy = 45.00% and CCR = 54.17% with ‘High’ reliability scoring), DEREK (accuracy = 72.73% and CCR = 71.44%) and TOPKAT (accuracy = 60.00% and CCR = 61.67%). Although, TIMES-SS showed higher predictive power (accuracy = 90.00% and CCR = 92.86%), the coverage was very low (only 10 out of 77 molecules were predicted reliably). Conclusions: Owing to improved prediction performance and coverage, our solution can serve as a useful expert system towards Integrated Approaches to Testing and Assessment for skin sensitization. It would be invaluable to cosmetic/ dermatology industry for pre-screening their molecules, and reducing time, cost and animal testing.

Suggested Citation

  • Konda Leela Sarath Kumar & Sujit R Tangadpalliwar & Aarti Desai & Vivek K Singh & Abhay Jere, 2016. "Integrated Computational Solution for Predicting Skin Sensitization Potential of Molecules," PLOS ONE, Public Library of Science, vol. 11(6), pages 1-22, June.
  • Handle: RePEc:plo:pone00:0155419
    DOI: 10.1371/journal.pone.0155419
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