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Updated: Jun 8, 2026

Isolation of Pulmonary Artery Smooth Muscle Cells from Neonatal Mice
Published on: October 19, 2013
The fungal microbiota modulate neonatal oxygen-induced lung injury
Isaac Martin1, Mary Silverberg1, Ahmed Abdelgawad1
1Division of Neonatology, Department of Pediatrics, Heersink School of Medicine, The University of Alabama at Birmingham, Birmingham, AL, USA.
Background:
The immature lungs of very preterm infants are exposed to supraphysiologic oxygen, contributing to bronchopulmonary dysplasia (BPD), a chronic lung disease that is the most common morbidity of prematurity. While the microbiota significantly influences neonatal health, the relationship between the intestinal microbiome, particularly micro-eukaryotic members such as fungi and yeast, and lung injury severity in newborns remains unknown.
Results:
Here, we show that the fungal microbiota modulates hyperoxia-induced lung injury severity in very low birth weight premature infants and preclinical pseudohumanized and altered fungal colonization mouse models. Instead of fungal communities dominated by Candida and Saccharomyces, the first stool microbiomes of infants who developed BPD had less interconnected community architectures with a greater diversity of rarer fungi. After using a pseudohumanized model to show that transfer to the neonatal microbiome from infants with BPD increased the severity of lung injury, we used gain and loss of function approaches to demonstrate that modulating the extent of initial neonatal fungal colonization affected the extent of BPD-like lung injury in mice. We also identified alterations in the murine intestinal microbiome and transcriptome associated with augmented lung injury.
Conclusions:
These findings demonstrate that features of the initial intestinal fungal microbiome are associated with the later development of BPD in premature neonates and exert a microbiome-driven effect that is transferable and modifiable in murine models, which suggests both causality and a potential therapeutic strategy. Video Abstract.
Insights
The initial intestinal fungal microbiome composition impacts bronchopulmonary dysplasia (BPD) severity in premature infants. Modifying fungal colonization in mice altered lung injury, suggesting a transferable, modifiable microbiome-driven effect.
Area of Science:
- Neonatal Medicine
- Microbiome Research
- Pulmonology
Background:
- Premature infants receive high oxygen levels, increasing risk of bronchopulmonary dysplasia (BPD).
- The role of the intestinal fungal microbiome in neonatal lung injury severity is not well understood.
Purpose of the Study:
- To investigate the association between intestinal fungal microbiota and BPD severity in premature infants.
- To determine if fungal colonization influences hyperoxia-induced lung injury in preclinical models.
Main Methods:
- Analysis of stool microbiomes from premature infants with and without BPD.
- Use of pseudohumanized and altered fungal colonization mouse models.
- Gain and loss of function experiments to assess fungal colonization effects on lung injury.
- Murine intestinal microbiome and transcriptome analysis.
Main Results:
- Infants with BPD showed less interconnected fungal communities with increased diversity of rare fungi.
- Transferring BPD-associated neonatal microbiota worsened lung injury in pseudohumanized models.
- Modulating initial fungal colonization in mice altered BPD-like lung injury severity.
- Intestinal microbiome and transcriptome alterations were linked to increased lung injury in mice.
Conclusions:
- Initial intestinal fungal microbiome features are linked to BPD development in neonates.
- The fungal microbiome exerts a transferable and modifiable effect on BPD pathogenesis.
- Findings suggest causality and potential therapeutic strategies targeting the fungal microbiome.
Related Concept Videos
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Oxygen Requirements and Growth Patterns
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Microbiota Modulation by Antibiotics

