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Updated: Jul 25, 2026

Human Pluripotent Stem Cell Based Developmental Toxicity Assays for Chemical Safety Screening and Systems Biology Data Generation
Published on: June 17, 2015
A review: trichloroethylene metabolites: potential cardiac teratogens
P D Johnson1, B V Dawson, S J Goldberg
1Department of Pediatrics, Steele Memorial Children's Research Center, Tucson, Arizona, USA. pdj@peds.arizona.edu
Abstract:
This review is a a series of the authors' studies designed to test the hypothesis that administration of trichloroethylene (TCE), dichloroethylene (DCE), their metabolites, and related compounds are responsible for fetal cardiac teratogenesis when given to pregnant rats during organogenesis. Identification of teratogenic compounds will allow more accurate assessment of environmental contaminants and public health risks. Epidemiologic studies and previous teratogenic studies using chick embryos and fetal rats have reported an increased number of congenital cardiac defects when exposed to TCE or DCE during fetal development. Metabolites of TCE and DCE studied in the drinking-water exposure study include trichloroacetic acid TCAA), monochloroacetic acid, trichloroethanol, carboxymethylcysteine, trichloroacetaldehyde, dichloroacetaldehyde, and dichlorovinyl cysteine. Varying doses of each were given in drinking water to pregnant rats during the period of fetal heart development. Rats receiving 2730 ppm TCAA in drinking water were the only metabolite group demonstrating a significant increase in the number of cardiac defects in fetuses on a per-litter basis (p = 0.0004 Wilcoxon test and p =0.0015 exact permutation test). Maternal and fetal variables showed no statistically significant differences between treated and untreated groups. When treated with TCAA the increased cardiac defects, as compared to controls, do not preclude the involvement of other metabolites as cardiac teratogens, but indicates TCAA as a specific cardiac teratogen. Further studies of drinking-water exposure and potential mechanisms of action on the developing heart are proceeding.
Insights
Trichloroacetic acid (TCAA) in drinking water caused significant fetal cardiac defects in rats, identifying it as a specific teratogen. Further research is ongoing to understand its mechanism and other potential environmental contaminants.
Area of Science:
- Environmental Toxicology
- Developmental Toxicology
- Teratology
Background:
- Trichloroethylene (TCE) and dichloroethylene (DCE) exposure has been linked to congenital cardiac defects.
- Previous studies in chick embryos and fetal rats suggest TCE and DCE are teratogenic.
- Identifying specific teratogenic compounds is crucial for assessing environmental risks.
Purpose of the Study:
- To test the hypothesis that TCE, DCE, their metabolites, and related compounds cause fetal cardiac teratogenesis.
- To identify specific metabolites responsible for cardiac defects in developing rat fetuses.
- To evaluate the public health risks associated with environmental contaminants.
Main Methods:
- Pregnant rats were exposed to various doses of TCE and DCE metabolites via drinking water during organogenesis.
- Metabolites studied included trichloroacetic acid (TCAA), monochloroacetic acid, and others.
- Fetal cardiac defects were assessed, and maternal/fetal variables were analyzed.
Main Results:
- Only trichloroacetic acid (TCAA) at 2730 ppm in drinking water significantly increased cardiac defects per litter.
- Statistical analysis (Wilcoxon and exact permutation tests) confirmed the significance of TCAA's teratogenic effect.
- No significant differences were observed in maternal or fetal variables between treated and untreated groups.
Conclusions:
- Trichloroacetic acid (TCAA) is identified as a specific cardiac teratogen.
- While TCAA is a confirmed teratogen, other metabolites may also contribute to cardiac defects.
- Further studies are needed to investigate TCAA's mechanism of action and drinking water exposure risks.
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