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Published on: March 20, 2021
Adaptive immune responses are altered in adult mice following neonatal hyperoxia
Vasantha H S Kumar1, Huamei Wang1, Lori Nielsen1
1Department of Pediatrics, University at Buffalo, Buffalo, New York.
Insights
Neonatal hyperoxia exposure in mice suppressed adaptive immune responses, impacting T- and B-cell activation and increasing infection risk in premature infants with bronchopulmonary dysplasia.
Area of Science:
- Immunology
- Neonatology
- Pulmonology
Background:
- Premature infants with bronchopulmonary dysplasia (BPD) face risks of respiratory infections and impaired lung function.
- Neonatal hyperoxia is a potential factor contributing to these long-term respiratory morbidities.
Purpose of the Study:
- To investigate if neonatal hyperoxia disrupts adaptive immune responses in adult mice.
- To understand the link between hyperoxia-induced immune dysfunction and increased respiratory infections in premature infants.
Main Methods:
- Newborn mice were exposed to 85% oxygen (hyperoxia) or room air (RA) for 12 days.
- Gene and protein expression related to T-cell and B-cell adaptive immunity were analyzed in lung tissue at 2 weeks and 3 months.
- Real-time PCR, qRT-PCR, enzyme immunoassay, and immunohistochemistry were employed.
Main Results:
- Hyperoxia significantly increased p21 expression and decreased 19 genes related to T/B-cell activation at 2 weeks.
- Reduced expression of IFNγ, IL27, and CD40 persisted at 3 months despite recovery.
- Lower IL4 and IL10 protein levels were observed in adult mice exposed to neonatal hyperoxia.
Conclusions:
- Neonatal hyperoxia suppresses adaptive immune responses, affecting T- and B-cell activation.
- These immune alterations persist into adulthood, potentially increasing susceptibility to infections.
- Neonatal hyperoxia-induced immune dysfunction may contribute to respiratory morbidities in premature infants.
Abstract:
Premature infants with bronchopulmonary dysplasia (BPD), are at risk for frequent respiratory infections and reduced pulmonary function. We studied whether neonatal hyperoxia disrupts adaptive immune responses in adult mice, contributing to higher respiratory-related morbidities seen in these infants. Newborn mice litters were randomized at 3 days to 85% O2 or room air (RA) for 12 days. Whole lung mRNA was isolated in both the groups at 2 weeks and 3 months. Gene expression for T-cell and B-cell adaptive immune response was performed by real-time PCR and qRT-PCR; protein expression (p21, IL4, IL10, IL27, cd4) was performed by enzyme immunoassay along with p21 immunohistochemistry. Hyperoxia increased expression of p21 and decreased expression of 19 genes representing T/B-cell activation by ≥ fourfold; three of them significantly (Rag1, Cd1d1, Cd28) compared to the RA group at 2 weeks. Despite RA recovery, the expression of IFNγ, IL27, and CD40 was significantly reduced at 3 months in the hyperoxia group. Expression of p21 was significantly higher and IL27 protein lower at 2 weeks following hyperoxia. Adult mice exposed to neonatal hyperoxia had lower IL4 and IL10 in the lung at 3 months. Adaptive immune responses are developmentally regulated and neonatal hyperoxia suppresses expression of genes involved in T-/B-cell activation with continued alterations in gene expression at 3 months. Dysfunction of adaptive immune responses increases the risk for susceptibility to infection in premature infants.
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