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Improvement of quantitative structure-activity relationship (QSAR) tools for predicting Ames mutagenicity : outcomes of the Ames/QSAR International Challenge Project

Honma, Masamitsu (author)
Division of Genetics and Mutagenesis, National Institute of Health Sciences, Kawasaki Ku, Japan
Kitazawa, Airi (author)
Division of Genetics and Mutagenesis, National Institute of Health Sciences, Kawasaki Ku, Japan
Cayley, Alex (author)
Lhasa Limited, Leeds, England
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Williams, Richard V. (author)
Lhasa Limited, Leeds, England
Barber, Chris (author)
Lhasa Limited, Leeds, England
Hanser, Thierry (author)
Lhasa Limited, Leeds, England
Saiakhov, Roustem (author)
MultiCASE Inc., Beachwood, USA
Chakravarti, Suman (author)
MultiCASE Inc., Beachwood, USA
Myatt, Glenn J. (author)
Leadscope Inc., Columbus, USA
Cross, Kevin P. (author)
Leadscope Inc., Columbus, USA,Laboratory of Mathematical Chemistry, As Zlatarov University, Bourgas, Bulgaria
Benfenati, Emilio (author)
Istituto di Ricerche Farmacologiche Mario Negri IRCCS, Milano, Italy
Raitano, Giuseppa (author)
Istituto di Ricerche Farmacologiche Mario Negri IRCCS, Milano, Italy
Mekenyan, Ovanes (author)
Laboratory of Mathematical Chemistry, As Zlatarov University, Bourgas, Bulgaria
Petkov, Petko (author)
Bossa, Cecilia (author)
Istituto Superiore di Sanita', Rome, Italy
Benigni, Romualdo (author)
Istituto Superiore di Sanita', Rome, Italy; Alpha-Pretox, Rome, Italy
Battistelli, Chiara Laura (author)
Istituto Superiore di Sanita', Rome, Italy
Giuliani, Alessandro (author)
Istituto Superiore di Sanita', Rome, Italy
Tcheremenskaia, Olga (author)
Istituto Superiore di Sanita', Rome, Italy
DeMeo, Christine (author)
Prous Institute, Barcelona, Spain
Norinder, Ulf (author)
Stockholms universitet,Institutionen för data- och systemvetenskap,Swetox, Karolinska Institutet, Sweden,Unit of Toxicology Sciences, Karolinska Institute, Södertälje, Sweden; Department of Computer and Systems Sciences, Stockholm University, Kista, Sweden
Koga, Hiromi (author)
Fujitsu Kyushu Systems Limited, Fukuoka, Japan
Jose, Ciloy (author)
Fujitsu Kyushu Systems Limited, Fukuoka, Japan
Jeliazkova, Nina (author)
IdeaConsult Ltd., Sofia, Bulgaria
Kochev, Nikolay (author)
IdeaConsult Ltd., Sofia, Bulgaria; Department of Analytical Chemistry and Computer Chemistry, University of Plovdiv, Plovdiv, Bulgaria
Paskaleva, Vesselina (author)
Department of Analytical Chemistry and Computer Chemistry, University of Plovdiv, Plovdiv, Bulgaria
Yang, Chihae (author)
Molecular Networks GmbH, Nürnberg, Germany; Altamira LLC, Columbus, USA
Daga, Pankaj R. (author)
Simulations Plus Inc., Lancaster, USA
Clark, Robert D. (author)
Simulations Plus Inc., Lancaster, USA
Rathman, James (author)
Molecular Networks GmbH, Nürnberg, Germany; Altamira LLC, Columbus, USA; Ohio State University, Columbus, USA
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 (creator_code:org_t)
2018-10-23
2019
English.
In: Mutagenesis. - Oxford : Oxford University Press (OUP). - 0267-8357 .- 1464-3804. ; 34:1, s. 3-16
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • The International Conference on Harmonization (ICH) M7 guideline allows the use of in silico approaches for predicting Ames mutagenicity for the initial assessment of impurities in pharmaceuticals. This is the first international guideline that addresses the use of quantitative structure-activity relationship (QSAR) models in lieu of actual toxicological studies for human health assessment. Therefore, QSAR models for Ames mutagenicity now require higher predictive power for identifying mutagenic chemicals. To increase the predictive power of QSAR models, larger experimental datasets from reliable sources are required. The Division of Genetics and Mutagenesis, National Institute of Health Sciences (DGM/NIHS) of Japan recently established a unique proprietary Ames mutagenicity database containing 12140 new chemicals that have not been previously used for developing QSAR models. The DGM/NIHS provided this Ames database to QSAR vendors to validate and improve their QSAR tools. The Ames/QSAR International Challenge Project was initiated in 2014 with 12 QSAR vendors testing 17 QSAR tools against these compounds in three phases. We now present the final results. All tools were considerably improved by participation in this project. Most tools achieved >50% sensitivity (positive prediction among all Ames positives) and predictive power (accuracy) was as high as 80%, almost equivalent to the inter-laboratory reproducibility of Ames tests. To further increase the predictive power of QSAR tools, accumulation of additional Ames test data is required as well as re-evaluation of some previous Ames test results. Indeed, some Ames-positive or Ames-negative chemicals may have previously been incorrectly classified because of methodological weakness, resulting in false-positive or false-negative predictions by QSAR tools. These incorrect data hamper prediction and are a source of noise in the development of QSAR models. It is thus essential to establish a large benchmark database consisting only of well-validated Ames test results to build more accurate QSAR models.

Subject headings

NATURVETENSKAP  -- Biologi (hsv//swe)
NATURAL SCIENCES  -- Biological Sciences (hsv//eng)
MEDICIN OCH HÄLSOVETENSKAP  -- Medicinska och farmaceutiska grundvetenskaper -- Farmakologi och toxikologi (hsv//swe)
MEDICAL AND HEALTH SCIENCES  -- Basic Medicine -- Pharmacology and Toxicology (hsv//eng)
NATURVETENSKAP  -- Data- och informationsvetenskap -- Bioinformatik (hsv//swe)
NATURAL SCIENCES  -- Computer and Information Sciences -- Bioinformatics (hsv//eng)

Keyword

quantitative structure-activity relationship
mutagenic effect
datasets

Publication and Content Type

ref (subject category)
art (subject category)

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