Related Experiment Video
Updated: Jul 27, 2025

The WinCF Model - An Inexpensive and Tractable Microcosm of a Mucus Plugged Bronchiole to Study the Microbiology of Lung Infections
Published on: May 8, 2017
In host evolution of Exophiala dermatitidis in cystic fibrosis lung micro-environment
Tania Kurbessoian1, Daniel Murante2, Alex Crocker2
1Department of Microbiology and Plant Pathology and Institute of Integrative Genome Biology, University of California Riverside, Riverside, CA 92521, USA.
Abstract:
Individuals with cystic fibrosis (CF) are susceptible to chronic lung infections that lead to inflammation and irreversible lung damage. While most respiratory infections that occur in CF are caused by bacteria, some are dominated by fungi such as the slow-growing black yeast Exophiala dermatitidis. Here, we analyze isolates of E. dermatitidis cultured from two samples, collected from a single subject 2 years apart. One isolate genome was sequenced using long-read Nanopore technology as an in-population reference to use in comparative single nucleotide polymorphism and insertion-deletion variant analyses of 23 isolates. We then used population genomics and phylo-genomics to compare the isolates to each other as well as the reference genome strain E. dermatitidis NIH/UT8656. Within the CF lung population, three E. dermatitidis clades were detected, each with varying mutation rates. Overall, the isolates were highly similar suggesting that they were recently diverged. All isolates were MAT 1-1, which was consistent with their high relatedness and the absence of evidence for mating or recombination between isolates. Phylogenetic analysis grouped sets of isolates into clades that contained isolates from both early and late time points indicating there are multiple persistent lineages. Functional assessment of variants unique to each clade identified alleles in genes that encode transporters, cytochrome P450 oxidoreductases, iron acquisition, and DNA repair processes. Consistent with the genomic heterogeneity, isolates showed some stable phenotype heterogeneity in melanin production, subtle differences in antifungal minimum inhibitory concentrations, and growth on different substrates. The persistent population heterogeneity identified in lung-derived isolates is an important factor to consider in the study of chronic fungal infections, and the analysis of changes in fungal pathogens over time may provide important insights into the physiology of black yeasts and other slow-growing fungi in vivo.
Insights
Cystic fibrosis (CF) patients harbor persistent fungal infections by Exophiala dermatitidis. Genomic analysis reveals multiple, genetically similar lineages within a single patient, highlighting population heterogeneity in chronic fungal infections.
Area of Science:
- Medical Mycology
- Genomics
- Infectious Diseases
Background:
- Individuals with cystic fibrosis (CF) experience chronic lung infections, often involving fungi like Exophiala dermatitidis.
- Understanding the genetic diversity and persistence of these fungal pathogens is crucial for managing CF lung disease.
Purpose of the Study:
- To analyze the population genomics of Exophiala dermatitidis isolates from a cystic fibrosis patient.
- To investigate the genetic relatedness, divergence, and potential persistence of fungal lineages within the CF lung environment.
Main Methods:
- Whole-genome sequencing of an Exophiala dermatitidis isolate using Nanopore technology.
- Comparative genomic analysis of 23 isolates using single nucleotide polymorphism and insertion-deletion variant detection.
- Population genomics and phylogenetic analyses to infer evolutionary relationships and identify distinct clades.
Main Results:
- Three distinct Exophiala dermatitidis clades were identified within the CF lung population, with varying mutation rates.
- Isolates were highly related, suggesting recent divergence, and all belonged to the MAT 1-1 mating type, with no evidence of recombination.
- Phylogenetic analysis revealed persistent lineages with isolates from both early and late time points, alongside clade-specific functional variants in genes related to transport, metabolism, and DNA repair.
Conclusions:
- Persistent population heterogeneity exists within Exophiala dermatitidis isolates in the CF lung.
- Genomic and phenotypic variations contribute to the adaptability and persistence of this fungus in vivo.
- Studying fungal pathogen evolution over time offers insights into the physiology of slow-growing fungi in chronic infections.
Related Concept Videos
Cystic Fibrosis: Pathogenesis
CF is primarily caused by a genetic mutation in a chromosome 7 gene coding for the cystic fibrosis transmembrane conductance regulator (CFTR) protein. The most common gene mutation leading to CF is the ΔF508 mutation,...
Cystic Fibrosis: Management
Sinus disease and chronic...

