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Updated: Jul 24, 2025

Development of a Polymicrobial Colony Biofilm Model to Test Antimicrobials in Cystic Fibrosis
Published on: September 20, 2024
Development of the intestinal microbiome in cystic fibrosis in early life
Courtney E Price1, Thomas H Hampton1, Rebecca A Valls1
1Department of Microbiology and Immunology, Geisel School of Medicine at Dartmouth , Hanover, New Hampshire, USA.
Insights
The gut microbiome in children with cystic fibrosis (CF) develops over time, with early signs of dysbiosis potentially linked to later gut health and lung infections. This study tracks microbiome changes from birth to age four.
Area of Science:
- Microbiology
- Pediatrics
- Genetics
Background:
- Cystic fibrosis (CF) is a genetic disorder affecting mucus production, leading to chronic lung infections and gastrointestinal issues.
- Gut microbiome dysbiosis is recognized in CF, but its longitudinal development from birth is poorly understood.
- Early life is a critical window for gut microbiome and immune system development.
Purpose of the Study:
- To longitudinally characterize the gut microbiome development in children with CF from birth to four years of age.
- To identify age-related changes in the CF gut microbiota and specific taxa.
- To explore the relationship between early gut dysbiosis, CF lung disease taxa, and potential links to inflammatory bowel disease markers.
Main Methods:
- 16S rRNA gene amplicon sequencing of stool samples from a cohort of children with CF (cwCF).
- Longitudinal analysis of gut microbiome composition and diversity from birth through early childhood (0-4 years).
- Application of the Crohn's Dysbiosis Index to assess dysbiosis patterns.
Main Results:
- Gut microbiome alpha diversity increased with age, plateauing around two years in cwCF.
- Specific taxa like *Akkermansia* decreased and *Blautia* increased with age.
- Several taxa associated with CF lung disease persisted, suggesting potential gut-to-lung seeding.
- Early-life high Crohn's-associated dysbiosis correlated with lower *Bacteroides* abundance later in childhood.
Conclusions:
- The gut microbiome in children with CF undergoes significant changes during early life.
- Early gut dysbiosis markers may predict later microbiome composition in cwCF.
- The gut microbiome could serve as a reservoir for airway pathogens and indicate early inflammatory bowel disease-like changes.
Abstract:
Cystic fibrosis (CF) is a heritable disease that causes altered physiology at mucosal sites; these changes result in chronic infections in the lung, significant gastrointestinal complications as well as dysbiosis of the gut microbiome, although the latter has been less well explored. Here, we describe the longitudinal development of the gut microbiome in a cohort of children with CF (cwCF) from birth through early childhood (0-4 years of age) using 16S rRNA gene amplicon sequencing of stool samples as a surrogate for the gut microbiota. Similar to healthy populations, alpha diversity of the gut microbiome increases significantly with age, but diversity plateaus at ~2 years of age for this CF cohort. Several taxa that have been associated with dysbiosis in CF change with age toward a more healthy-like composition; notable exceptions include Akkermansia, which decreases with age, and Blautia, which increases with age. We also examined the relative abundance and prevalence of nine taxa associated with CF lung disease, several of which persist across early life, highlighting the possibility of the lung being seeded directly from the gut early in life. Finally, we applied the Crohn's Dysbiosis Index to each sample, and found that high Crohn's-associated dysbiosis early in life (<2 years) was associated with significantly lower Bacteroides in samples collected from 2 to 4 years of age. Together, these data comprise an observational study that describes the longitudinal development of the CF-associated gut microbiota and suggest that early markers associated with inflammatory bowel disease may shape the later gut microbiota of cwCF. IMPORTANCE Cystic fibrosis is a heritable disease that disrupts ion transport at mucosal surfaces, causing a buildup of mucus and dysregulation of microbial communities in both the lungs and the intestines. Persons with CF are known to have dysbiotic gut microbial communities, but the development of these communities over time beginning at birth has not been thoroughly studied. Here, we describe an observation study following the development of the gut microbiome of cwCF throughout the first 4 years of life, during the critical window of both gut microbiome and immune development. Our findings indicate the possibility of the gut microbiota as a reservoir of airway pathogens and a surprisingly early indication of a microbiota associated with inflammatory bowel disease.
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