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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
A transcriptome-based classifier to identify developmental toxicants by stem cell testing: design, validation and
Eugen Rempel1, Lisa Hoelting, Tanja Waldmann
1Department of Statistics, TU Dortmund University, 44139, Dortmund, Germany.
Abstract:
Test systems to identify developmental toxicants are urgently needed. A combination of human stem cell technology and transcriptome analysis was to provide a proof of concept that toxicants with a related mode of action can be identified and grouped for read-across. We chose a test system of developmental toxicity, related to the generation of neuroectoderm from pluripotent stem cells (UKN1), and exposed cells for 6 days to the histone deacetylase inhibitors (HDACi) valproic acid, trichostatin A, vorinostat, belinostat, panobinostat and entinostat. To provide insight into their toxic action, we identified HDACi consensus genes, assigned them to superordinate biological processes and mapped them to a human transcription factor network constructed from hundreds of transcriptome data sets. We also tested a heterogeneous group of 'mercurials' (methylmercury, thimerosal, mercury(II)chloride, mercury(II)bromide, 4-chloromercuribenzoic acid, phenylmercuric acid). Microarray data were compared at the highest non-cytotoxic concentration for all 12 toxicants. A support vector machine (SVM)-based classifier predicted all HDACi correctly. For validation, the classifier was applied to legacy data sets of HDACi, and for each exposure situation, the SVM predictions correlated with the developmental toxicity. Finally, optimization of the classifier based on 100 probe sets showed that eight genes (F2RL2, TFAP2B, EDNRA, FOXD3, SIX3, MT1E, ETS1 and LHX2) are sufficient to separate HDACi from mercurials. Our data demonstrate how human stem cells and transcriptome analysis can be combined for mechanistic grouping and prediction of toxicants. Extension of this concept to mechanisms beyond HDACi would allow prediction of human developmental toxicity hazard of unknown compounds with the UKN1 test system.
Insights
Human stem cells and transcriptome analysis can identify and group developmental toxicants by their mode of action. This approach accurately classifies histone deacetylase inhibitors (HDACi) and differentiates them from mercurials, paving the way for predicting chemical toxicity.
Area of Science:
- Developmental toxicology
- Stem cell biology
- Transcriptomics
- Computational toxicology
Background:
- Urgent need for reliable test systems to identify developmental toxicants.
- Existing methods lack the precision to group toxicants by mode of action.
- Human stem cell technology offers a promising in vitro model for developmental toxicity testing.
Purpose of the Study:
- To demonstrate the proof of concept for identifying and grouping toxicants with related modes of action using human stem cells and transcriptome analysis.
- To develop and validate a classifier for distinguishing between different classes of developmental toxicants.
Main Methods:
- Utilized a human pluripotent stem cell (UKN1) test system for neuroectoderm generation.
- Exposed cells to histone deacetylase inhibitors (HDACi) and mercurials.
- Performed transcriptome analysis (microarray) and applied a support vector machine (SVM)-based classifier.
Main Results:
- Identified consensus genes for HDACi and mapped them to a human transcription factor network.
- An SVM classifier accurately predicted HDACi and differentiated them from mercurials.
- Optimized classifier using eight genes (F2RL2, TFAP2B, EDNRA, FOXD3, SIX3, MT1E, ETS1, LHX2) for effective separation.
Conclusions:
- Human stem cells combined with transcriptome analysis provide a powerful tool for mechanistic grouping and prediction of toxicants.
- The developed method can accurately classify toxicants based on their mode of action, such as HDACi.
- This approach holds potential for predicting the developmental toxicity hazard of unknown compounds.
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