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Investigating the Links between Lower Iron Status in Pregnancy and Respiratory Disease in Offspring Using Murine
Henry M Gomez1, Amber L Pillar1, Alexandra C Brown1
1School of Biomedical Sciences and Pharmacy, College of Health, Medicine and Wellbeing, and Priority Research Centre for Healthy Lungs, University of Newcastle and Hunter Medical Research Institute, Callaghan, NSW 2308, Australia.
Insights
Maternal iron deficiency during pregnancy impairs offspring lung development and increases asthma severity. Supplementing iron may prevent respiratory diseases in children.
Area of Science:
- Reproductive biology
- Pediatric pulmonology
- Nutritional science
Background:
- Maternal iron deficiency affects 40-50% of pregnancies.
- Iron deficiency is linked to increased childhood respiratory diseases, including asthma.
Purpose of the Study:
- To investigate how maternal low iron status impacts offspring lung function, inflammation, and structure.
- To determine the role of maternal iron deficiency in exacerbating experimental asthma in offspring.
Main Methods:
- Utilized murine models to simulate low iron status during pregnancy.
- Assessed lung function, inflammation, and structural changes in offspring.
- Evaluated the effects on experimental asthma models.
Main Results:
- Low iron diet during pregnancy impaired offspring lung function and altered lung structure.
- Maternal iron deficiency increased airway inflammation and neutrophilic infiltration in offspring with asthma.
- These effects were more pronounced in offspring with experimental asthma.
Conclusions:
- Maternal iron deficiency leads to physiological, immunological, and anatomical changes in offspring lungs, increasing susceptibility to respiratory diseases.
- Iron supplementation during pregnancy may be crucial for preventing or reducing respiratory disease severity in offspring.
- Experimental models are valuable for understanding maternal iron's impact and testing iron supplement efficacy.
Abstract:
Maternal iron deficiency occurs in 40-50% of all pregnancies and is associated with an increased risk of respiratory disease and asthma in children. We used murine models to examine the effects of lower iron status during pregnancy on lung function, inflammation and structure, as well as its contribution to increased severity of asthma in the offspring. A low iron diet during pregnancy impairs lung function, increases airway inflammation, and alters lung structure in the absence and presence of experimental asthma. A low iron diet during pregnancy further increases these major disease features in offspring with experimental asthma. Importantly, a low iron diet increases neutrophilic inflammation, which is indicative of more severe disease, in asthma. Together, our data demonstrate that lower dietary iron and systemic deficiency during pregnancy can lead to physiological, immunological and anatomical changes in the lungs and airways of offspring that predispose to greater susceptibility to respiratory disease. These findings suggest that correcting iron deficiency in pregnancy using iron supplements may play an important role in preventing or reducing the severity of respiratory disease in offspring. They also highlight the utility of experimental models for understanding how iron status in pregnancy affects disease outcomes in offspring and provide a means for testing the efficacy of different iron supplements for preventing disease.
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