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Updated: Jul 6, 2025

Author Spotlight: Modeling an Aspect of Preeclampsia in Female Mice Using Hypoxic Human Placenta-Derived Small Extracellular Vesicles
Published on: January 26, 2024
An Endogenous Aryl Hydrocarbon Receptor Ligand Induces Preeclampsia-like Phenotypes: Transcriptome, Phosphoproteome,
Insights
Dysregulation of aryl hydrocarbon receptor (AhR) ligands contributes to preeclampsia (PE) by impairing vascular function and altering fetal sex-specific immune responses. This highlights a novel mechanism and potential therapeutic targets for PE.
Area of Science:
- Reproductive biology
- Vascular physiology
- Immunology
Background:
- Preeclampsia (PE) is a major cause of maternal and fetal mortality.
- Aryl hydrocarbon receptor (AhR) regulates vascular functions, but its role in PE pathogenesis is unclear.
- Endogenous AhR ligands can induce hypertension.
Approach:
- Measured AhR activity in human maternal and umbilical vein sera.
- Used pregnant rat and human umbilical vein endothelial cell (HUVEC) models.
- Applied physiological, cellular, and molecular techniques, including RNA sequencing and phosphoproteomics.
Key Points:
- Elevated AhR activity observed in PE sera.
- ITE, an endogenous AhR ligand, mimicked PE hallmarks in pregnant rats.
- ITE impaired HUVEC function and dysregulated placental/HUVEC transcriptomes and phosphoproteomes in a fetal sex-specific manner.
Conclusions:
- Dysregulated endogenous AhR ligands contribute to PE pathophysiology.
- Impaired vascular function, altered immune cell infiltration, and transcriptomic/phosphoproteomic changes are implicated.
- AhR-related pathways offer potential therapeutic targets for PE.
Background:
Preeclampsia (PE) is one hypertensive disorder and a leading cause of maternal and fetal mortality and morbidity during human pregnancy. Aryl hydrocarbon receptor (AhR) is a transcription factor, which regulates vascular functions. Exogenous and endogenous AhR ligands can induce hypertension in animals. However, if dysregulation of endogenous AhR ligands contributes to the pathophysiology of PE remains elusive.
Methods:
We measured AhR activities in human maternal and umbilical vein sera. We also applied physiological, cellular, and molecular approaches to dissect the role of endogenous AhR ligands in vascular functions during pregnancy using pregnant rats and primary human umbilical vein endothelial cells (HUVECs) as models.
Results:
PE elevated AhR activities in human umbilical vein sera. Exposure of pregnant rats to an endogenous AhR ligand, 2-(1'H-indole-3'-carbonyl)-thiazole-4-carboxylic acid methyl ester (ITE) increased blood pressure and proteinuria, while decreased uteroplacental blood flow and reduced fetal and placental weights, all of which are hallmarks of PE. ITE dampened vascular growth and fetal sex-specifically altered immune cell infiltration in rat placentas. ITE also decreased cell proliferation and cell monolayer integrity in HUVECs in vitro . RNA sequencing analysis revealed that ITE dysregulated transcriptome in rat placentas and HUVECs in a fetal sex-specific manner. Bottom-up phosphoproteomics showed that ITE disrupted phosphoproteome in HUVECs. These ITE-dysregulated genes and phosphoproteins were enriched in biological functions and pathways which are highly relevant to diseases of heart, liver, and kidney, vascular functions, inflammation responses, cell death, and kinase inhibition.
Conclusions:
Dysregulation of endogenous AhR ligands during pregnancy may lead to the development of PE with underlying impaired vascular functions, fetal sex-specific immune cell infiltration and transcriptome, and phosphoproteome. Thus, this study has provided a novel mechanism for the development of PE and potentially other forms of hypertensive pregnancies. These AhR ligand-activated genes and phosphoproteins might represent promising therapeutic and fetal sex-specific targets for PE-impaired vascular functions.
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