Related Experiment Video
Updated: Jul 15, 2025

Isolation of Culturable Yeasts and Molds from Soils to Investigate Fungal Population Structure
Published on: May 27, 2022
NIH4215: A mutation-prone thiamine auxotrophic clinical Aspergillus fumigatus isolate
Roberta Peres da Silva1, Matthias Brock1
1University of Nottingham, School of Life Sciences, University Park, Nottingham, United Kingdom.
Abstract:
Aspergillus fumigatus is the main cause of life-threatening invasive aspergillosis. Despite the availability of various antifungals, therapy remains challenging and requires further studies. Accordingly, the clinical A. fumigatus isolate NIH4215 deriving from a fatal case of human pulmonary aspergillosis has frequently been used in drug efficacy studies. Unexpectedly, our initial attempts to generate a bioluminescent reporter of strain NIH4215 for in vivo drug efficacy studies failed, as NIH4215 was unable to grow on defined minimal medium. Subsequent analyses discovered a previously undescribed thiamine auxotrophy of strain NIH4215 and transformation with thiamine biosynthesis genes from A. fumigatus strain Af293 identified the nmt1 gene as cause of the thiamine auxotrophy. Sequencing of the defective nmt1 gene revealed the loss of a cysteine codon within an essential iron-binding motif. Subsequently, the wild-type nmt1 gene was successfully used to generate a bioluminescent reporter strain in NIH4215 by simultaneously deleting the akuB locus. The resulting bioluminescent ΔakuB strains showed a high frequency of homologous integration as confirmed by generation of pyrG and niaD deletion mutants. When tested in a Galleria mellonella infection model, neither thiamine auxotrophy nor the deletion of the akuB locus had a significant effect on virulence. However, besides thiamine auxotrophy, sectors with altered morphology and albino mutants frequently arose on colony edges of strain NIH4215 and its derivatives, and stable albino mutants were successfully isolated. A proposed increased mutation rate of NIH4215 was confirmed by screening for spontaneous occurrence of fluoorotic acid resistant mutants. Independent mutations in the pyrG and pyrE gene were identified in the fluoroorotic acid resistant NIH4215 isolates and the frequency of mutation was by at least one order of magnitude higher than that observed for the clinical A. fumigatus isolate CBS144.89. In summary, despite its virulence in animal models, strain NIH4215 is a thiamine auxotroph and prone to accumulate mutations. Our results suggest that thiamine biosynthesis is dispensable for host infection and mutation-prone strains such as NIH4215 could potentially facilitate the evolution of azole resistant strains as increasingly observed in the environment.
Insights
Clinical Aspergillus fumigatus strain NIH4215, used in drug studies, was found to be thiamine auxotrophic and prone to mutations. This mutation-prone nature may accelerate the development of antifungal resistance.
Area of Science:
- Medical Mycology
- Molecular Biology
- Genetics
Background:
- Invasive aspergillosis, caused by Aspergillus fumigatus, presents a significant therapeutic challenge.
- The clinical isolate NIH4215 is frequently used in antifungal drug efficacy studies.
- Initial attempts to create a bioluminescent reporter strain of NIH4215 for in vivo studies were unsuccessful due to growth defects.
Purpose of the Study:
- To investigate the cause of growth defects in Aspergillus fumigatus strain NIH4215.
- To characterize the genetic basis of thiamine auxotrophy in strain NIH4215.
- To develop a bioluminescent reporter strain of NIH4215 for in vivo drug efficacy studies and assess its virulence and mutation rate.
Main Methods:
- Genetic analysis to identify the thiamine biosynthesis gene responsible for auxotrophy.
- Gene sequencing to identify mutations in the identified gene.
- Strain engineering to create bioluminescent reporter strains by introducing wild-type genes and deleting specific loci (akuB).
- Virulence assessment using a Galleria mellonella infection model.
- Mutation rate determination by screening for fluoroorotic acid resistance.
Main Results:
- Strain NIH4215 exhibits thiamine auxotrophy due to a defective nmt1 gene, lacking a cysteine codon in an essential iron-binding motif.
- A bioluminescent reporter strain (ΔakuB) was successfully generated in NIH4215, showing high homologous integration efficiency.
- Thiamine auxotrophy and akuB deletion did not significantly impact virulence in the Galleria mellonella model.
- Strain NIH4215 and its derivatives display an elevated mutation rate, confirmed by increased frequency of fluoroorotic acid resistant mutants with mutations in pyrG and pyrE.
Conclusions:
- Thiamine biosynthesis is dispensable for host infection in Aspergillus fumigatus.
- Strain NIH4215 is a thiamine auxotroph with a significantly increased mutation rate.
- Mutation-prone strains like NIH4215 may contribute to the evolution and spread of azole resistance in Aspergillus fumigatus.
More Related Videos
09:04Studying Ribonucleotide Incorporation: Strand-specific Detection of Ribonucleotides in the Yeast Genome and Measuring Ribonucleotide-induced Mutagenesis
Published on: July 26, 2018
12:12Transformation of Probiotic Yeast and Their Recovery from Gastrointestinal Immune Tissues Following Oral Gavage in Mice
Published on: February 8, 2016
Related Concept Videos
Mutations in Microorganisms
Fungal Phylum Ascomycota