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Updated: Jun 23, 2025

Neural Tube Closure in Mouse Whole Embryo Culture
Published on: October 21, 2011
Crosstalk of MAP3K1 and EGFR signaling mediates gene-environment interactions that block developmental tissue closure
Jingjing Wang1, Bo Xiao1, Eiki Kimura1
1Department of Environmental and Public Health Sciences, University of Cincinnati, College of Medicine, Cincinnati, Ohio, USA.
Abstract:
Aberrant regulation of signal transduction pathways can adversely derail biological processes for tissue development. One such process is the embryonic eyelid closure that is dependent on the mitogen-activated protein kinase kinase kinase 1 (MAP3K1). Map3k1 KO in mice results in defective eyelid closure and an autosomal recessive eye-open at birth phenotype. We have shown that in utero exposure to dioxin, a persistent environmental toxicant, induces the same eye defect in Map3k1+/- heterozygous but not WT pups. Here, we explore the mechanisms of the Map3k1 (gene) and dioxin (environment) interactions (GxE) underlying defective eyelid closure. We show that, acting through the aryl hydrocarbon receptor, dioxin activates epidermal growth factor receptor signaling, which in turn depresses MAP3K1-dependent Jun N-terminal kinase (JNK) activity. The dioxin-mediated JNK repression is moderate but is exacerbated by Map3k1 heterozygosity. Therefore, dioxin exposed Map3k1+/- embryonic eyelids have a marked reduction of JNK activity, accelerated differentiation and impeded polarization in the epithelial cells. Knocking out Ahr or Egfr in eyelid epithelium attenuates the open-eye defects in dioxin-treated Map3k1+/- pups, whereas knockout of Jnk1 and S1pr that encodes the sphigosin-1-phosphate (S1P) receptors upstream of the MAP3K1-JNK pathway potentiates the dioxin toxicity. Our novel findings show that the crosstalk of aryl hydrocarbon receptor, epidermal growth factor receptor, and S1P-MAP3K1-JNK pathways determines the outcome of dioxin exposure. Thus, gene mutations targeting these pathways are potential risk factors for the toxicity of environmental chemicals.
Insights
Environmental toxicant dioxin causes birth defects in mice with a Map3k1 gene mutation by disrupting key signaling pathways. Gene variants in these pathways may increase risks from chemical exposure.
Area of Science:
- Developmental biology
- Toxicology
- Molecular biology
Background:
- Aberrant signal transduction pathways disrupt tissue development, including embryonic eyelid closure.
- Mitogen-activated protein kinase kinase kinase 1 (MAP3K1) is crucial for eyelid development; Map3k1 knockout mice exhibit eyelid defects.
- In utero dioxin exposure causes similar eye defects in Map3k1 heterozygous mice.
Purpose of the Study:
- To investigate the gene-environment (GxE) interaction mechanisms between Map3k1 and dioxin exposure.
- To elucidate the molecular pathways involved in dioxin-induced embryonic eyelid defects.
Main Methods:
- Utilized Map3k1 heterozygous mice and in utero dioxin exposure models.
- Investigated signaling pathways including aryl hydrocarbon receptor (Ahr), epidermal growth factor receptor (Egfr), and Jun N-terminal kinase (JNK).
- Employed gene knockout strategies for Ahr, Egfr, Jnk1, and S1pr in mouse models.
Main Results:
- Dioxin, via Ahr, activates Egfr signaling, suppressing MAP3K1-dependent JNK activity.
- Map3k1 heterozygosity exacerbates dioxin-induced JNK repression, leading to eyelid defects.
- Genetic knockout of Ahr or Egfr ameliorated dioxin toxicity, while Jnk1/S1pr knockout potentiated it.
Conclusions:
- Crosstalk between Ahr, Egfr, and S1P-MAP3K1-JNK pathways dictates dioxin exposure outcomes.
- Gene mutations in these critical pathways are potential risk factors for environmental chemical toxicity.
- Findings highlight the interplay between genetic predisposition and environmental factors in developmental toxicity.
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