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Updated: May 28, 2026

Long-term Behavioral and Reproductive Consequences of Embryonic Exposure to Low-dose Toxicants
Published on: March 6, 2018
Metabonomic phenotyping reveals an embryotoxicity of deca-brominated diphenyl ether in mice
Yi Chi1, Hongfei Xia, Mingming Su
1School of Pharmacy, Shanghai Jiao Tong University, Shanghai, P. R. China.
Abstract:
Recent studies have demonstrated that polybrominated diphenyl ethers (PBDEs), a group of industrial chemicals, could disrupt thyroid hormone homeostasis and exhibit neurotoxicity, reproductive toxicity, and embryotoxicity. However, clear evidence of embryotoxicity and neurotoxicity of many of these congeners, such as deca-BDE, one of the least bioactive congeners of PBDEs, is still lacking. In the present study, we investigated deca-BDE embryotoxicity by quantitative analysis of two essential thyroid hormones (T4 and T3) and a variety of small-molecule metabolites in the serum of deca-BDE-dosed pregnant mice. Four groups of pregnant C57 mice were administrated with deca-BDE in 20% fat emulsion at a dose of 150, 750, 1,500, or 2,500 mg/kg body weight via gastric intubation on gestation days (g.d.s) 7 to 9, while a control group was given 20% fat emulsion. Maternal mice were euthanized on g.d. 16 and examined for external malformations of the fetus. Maternal serum samples were collected and analyzed by the enzyme linked immunosorbent assay (ELISA) and gas chromatography-time-of-flight mass spectrometry (GC-TOF MS). Using multivariate statistical analysis, we observed a significantly altered metabolic profile associated with deca-BDE embryotoxicity in maternal serum. Our results also demonstrated that deca-BDE at a dose of 2 500 mg/kg body weight induced significant disruption of thyroid hormone metabolism, the TCA cycle, and lipid metabolism in maternal mice, which subsequently led to a significant inhibition of fetal growth and development. We concluded that deca-BDE-induced embryotoxicity closely correlated with global metabolic disruption that can be characterized by thyroid hormone deficiency, disrupted lipid metabolism, and a depleted level of cholesterol in maternal mice.
Insights
Deca-BDE exposure in pregnant mice disrupted thyroid hormone and lipid metabolism, leading to significant embryotoxicity and inhibited fetal development. This highlights deca-BDE
Area of Science:
- Environmental Toxicology
- Metabolomics
- Developmental Biology
Background:
- Polybrominated diphenyl ethers (PBDEs) are industrial chemicals with potential endocrine-disrupting effects.
- Evidence for deca-BDE's embryotoxicity and neurotoxicity is limited, despite its widespread use.
- Thyroid hormone homeostasis is crucial for normal fetal development.
Purpose of the Study:
- To investigate the embryotoxic effects of deca-BDE in pregnant mice.
- To analyze the impact of deca-BDE exposure on thyroid hormone levels and small-molecule metabolites.
- To establish a correlation between deca-BDE exposure, metabolic disruption, and fetal development.
Main Methods:
- Pregnant mice were administered varying doses of deca-BDE via gastric intubation during critical gestation days.
- Maternal serum was analyzed for thyroid hormones (T4, T3) using ELISA.
- Metabolomic profiling of maternal serum was performed using gas chromatography-time-of-flight mass spectrometry (GC-TOF MS).
- Multivariate statistical analysis was employed to identify metabolic alterations.
Main Results:
- Deca-BDE exposure significantly altered the metabolic profile in maternal serum.
- High-dose deca-BDE (2,500 mg/kg) disrupted thyroid hormone metabolism, the TCA cycle, and lipid metabolism.
- Significant inhibition of fetal growth and development was observed in deca-BDE-exposed groups.
- Thyroid hormone deficiency, disrupted lipid metabolism, and depleted cholesterol levels were associated with deca-BDE embryotoxicity.
Conclusions:
- Deca-BDE induces embryotoxicity through global metabolic disruption in maternal mice.
- Thyroid hormone homeostasis and lipid metabolism are key pathways affected by deca-BDE.
- Deca-BDE exposure poses a risk to fetal development, necessitating further investigation into its toxicological profile.

