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Updated: Apr 7, 2026

A Murine Model of Fetal Exposure to Maternal Inflammation to Study the Effects of Acute Chorioamnionitis on Newborn Intestinal Development
Published on: June 24, 2020
DHA suppresses chronic apoptosis in the lung caused by perinatal inflammation
Mehboob Ali1, Kathryn M Heyob1, Markus Velten2
1Center for Perinatal Research, The Research Institute at Nationwide Children's Hospital, Columbus, Ohio;
Insights
Maternal docosahexaenoic acid (DHA) supplementation prevents persistent inflammation, oxidation, and apoptosis in offspring lungs exposed to adverse perinatal conditions. This supports DHA
Area of Science:
- Pulmonary Medicine
- Developmental Biology
- Nutritional Science
Background:
- Adverse perinatal environments severely impact lung development and adult cardiopulmonary function.
- Maternal LPS treatment and neonatal hyperoxia cause permanent lung disease, including reduced alveolarization and fibrosis.
Purpose of the Study:
- To investigate if Notch signaling dysregulation contributes to the altered lung phenotype.
- To determine if maternal docosahexaenoic acid (DHA) supplementation normalizes Notch-related protein expression and improves lung outcomes.
Main Methods:
- Mice were exposed to maternal LPS treatment followed by neonatal hyperoxia.
- Maternal DHA supplementation was administered.
- Lung tissue was analyzed at 8 weeks for inflammation, oxidation, apoptosis markers, and Notch-pathway proteins.
Main Results:
- Maternal DHA supplementation attenuated persistent inflammation (IL-6) and oxidation (F2a-isoprostanes).
- Substantial increases in apoptosis markers (PARP-1, APAF-1, caspase-9, BCL2, HMGB1) were observed, and these were attenuated by maternal DHA.
- Notch signaling pathway proteins showed modest, inconsistent changes; however, persistent apoptosis was detected at 8 weeks.
Conclusions:
- Maternal DHA supplementation effectively prevents sustained inflammation, oxidation, and apoptosis in a model of perinatal lung injury.
- Persistent apoptosis, rather than Notch pathway dysregulation, may underlie the long-term lung alterations.
- Ongoing apoptosis could increase susceptibility to further pulmonary disease.
Abstract:
We have previously shown that an adverse perinatal environment significantly alters lung growth and development and results in persistently altered cardiopulmonary physiology in adulthood. Our model of maternal LPS treatment followed by 14 days of neonatal hyperoxia exposure causes severe pulmonary disease characterized by permanent decreases in alveolarization and diffuse interstitial fibrosis. The current investigations tested the hypothesis that dysregulation of Notch signaling pathways contributes to the permanently altered lung phenotype in our model and that the improvements we have observed previously with maternal docosahexaenoic acid (DHA) supplementation are mediated through normalization of Notch-related protein expression. Results indicated that inflammation (IL-6 levels) and oxidation (F2a-isoprostanes) persisted through 8 wk of life in mice exposed to LPS/O2 perinatally. These changes were attenuated by maternal DHA supplementation. Modest but inconsistent differences were observed in Notch-pathway proteins Jagged 1, DLL 1, PEN2, and presenilin-2. We detected substantial increases in markers of apoptosis including PARP-1, APAF-1, caspase-9, BCL2, and HMGB1, and these increases were attenuated in mice that were nursed by DHA-supplemented dams during the perinatal period. Although Notch signaling is not significantly altered at 8 wk of age in mice with perinatal exposure to LPS/O2, our findings indicate that persistent apoptosis continues to occur at 8 wk of age. We speculate that ongoing apoptosis may contribute to persistently altered lung development and may further enhance susceptibility to additional pulmonary disease. Finally, we found that maternal DHA supplementation prevented sustained inflammation, oxidation, and apoptosis in our model.
Related Concept Videos
The Extrinsic Apoptotic Pathway
Chronic Obstructive Pulmonary Disease-II: Pathophysiology
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