ArticleMolecular psychiatry2025
Maternal stressors disrupt mouse placental proteome and fetal brain development in a sex-specific fashion through inflammation and oxidative stress.
Article in Molecular psychiatry, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- Diminished Maternal Tryptophan Leads to Sexually Dimorphic Differences in the Placenta-Brain Axis.Nutrients · 2026Article
- Identification of an immune-metabolic biosignature linking depressive symptoms and breast cancer in a clinical population.Translational psychiatry · 2026Article
- Research progress on the association of maternal high-fat diet with offspring neurodevelopment and susceptibility to Parkinson's disease.Frontiers in nutrition · 2026Review
- Developmental origins of immunometabolic health.Immunometabolism (Cobham, Surrey) · 2026Review
- Maternal Dietary Pattern in Pregnancy and Behavioral Outcomes at 4 Years of Age in the Piccolipiù Cohort: Potential Sex-Related Differences.Nutrients · 2025Article
- Sex-dependent preventive effects of prenatal N-acetyl-cysteine on neuronal, emotional and metabolic dysfunctions following exposure to maternal high-fat diet in mice.Translational psychiatry · 2025Article
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Authors and funding
19 authors.
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Abstract
Adverse maternal conditions during pregnancy result in an increased risk for neuropsychiatric disorders in the offspring, although the underlying mechanisms are poorly understood. We have recently shown that two distinct insults, prenatal stress (PNS) or maternal high-fat diet (mHFD), increase inflammation and oxidative stress in the brain of adolescent female mice. Here, we sought to investigate the early mechanisms underlying such effects, focusing on the placenta and fetal brain, as well as the protective effects of the antioxidant N-acetyl-cysteine (NAC), in C57Bl6/N mice. We used a multi-disciplinary approach combining proteomic, metabolomic, lipidomic and histological analysis to characterize the structural and functional changes of the placenta; moreover, a targeted gene expression analysis was carried out in the brains of male and female fetuses to evaluate oxidative stress and inflammatory-related changes. Our data highlight comparable, but sex-specific, responses to the two maternal stressors, which target placenta and fetal brain, and are buffered by NAC administration. Placental function was specifically disrupted in males, with signaling pathways of cardio-metabolic risk emerging in this sex. By contrast, fetal brain was affected in females, with an increased expression of genes related to inflammation and oxidative stress. In conclusion, we provide evidence for an early origin of sex-dependent embedding of prenatal adverse experiences in different organs which might explain differential susceptibility to later disease trajectories.
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