Antibiotic-induced Malassezia spp. expansion in infants promotes early-life immune dysregulation and airway inflammation in mice
van Tilburg Bernardes, E.; Gutierrez, M. W.; Nguyen, W. N. T.; Mercer, E. M.; Ramay, H. R.; Glatthardt, T.; Thomson, C. A.; Halim, T.; Gopalakrishnan, N.; Kalbfleish, K.; Patel, K. D.; McCoy, K. D.; Freedman, S. B.; Arrieta, M. C.
Show abstract
Antibiotics have deleterious consequences for the gut microbiome and can increase the risk of childhood asthma. While the effects of antibiotics on the bacterial microbiome and asthma risk are well characterized, their impact on the fungal microbiome (mycobiome) remains vastly unexplored. We investigated the effect of antibiotic use on the gut mycobiome in an observational, prospective clinical study of young infants. Antibiotic treatment resulted in increased fungal abundance and expansion of the yeast Malassezia spp. Based on these findings, germ-free mouse pups were colonized with a defined consortium of mouse-derived bacteria (Oligo-MM12) with or without Malassezia restricta. Colonization with this yeast increased myeloid and lymphoid intestinal immune responses deemed critical in atopy development, and elevated airway inflammation in house-dust mite (HDM)-challenged mice. Further evaluation in eosinophil-deficient mice revealed that the observed immune response is partially dependent on this cell type. This translational work demonstrates that fungal overgrowth and expansion of Malassezia spp. are previously overlooked collateral effects of infant antibiotic use, which may offer a potential strategy to prevent or mitigate pediatric asthma and related conditions. One Sentence Summary: Antibiotic-induced Malassezia spp. expansion in infants promotes early-life immune dysregulation and airway inflammation in gnotobiotic mice.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Biosynthetic Enzyme-guided Disease Correlation Connects Gut Microbial Metabolites Sulfonolipids to Inflammatory Bowel Disease Involving TLR4 Signaling 96%
- Listeria monocytogenes faecal carriage is common and driven by microbiota 96%
- Mechanical ventilation affects respiratory microbiome of COVID-19 patients and its interactions with the host 96%
Similar papers in this journal
- MRGM: An enhanced catalog of mouse gut microbial genomes substantially broadening taxonomic and functional landscapes 96%
- Gut microbiome shifts in adolescents after sleeve gastrectomy with increased oral-associated taxa and pro-inflammatory potential 96%
- The influence of early life exposures on the infant gut virome 95%
Similar papers in this journal
- Transplantation of bacteriophages from ulcerative colitis patients shifts the gut bacteriome and exacerbates severity of DSS-colitis 97%
- Mouse Adaptation of Human Inflammatory Bowel Diseases Microbiota Enhances Colonization Efficiency and Alters Microbiome Aggressiveness Depending on Recipient Colonic Inflammatory Environment 96%
- Fetal programming by the parental microbiome of offspring behavior, and DNA methylation and gene expression within the hippocampus 96%
Similar papers in this journal
- Antibiotic perturbation of the human gut phageome preserves its individuality and promotes blooms of virulent phages. 95%
- MAIT cells protect against sterile lung injury 95%
- The Achromobacter Type 3 secretion system drives pyroptosis and immunopathology via independent activation of NLRC4 and NLRP3 inflammasomes 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.