The LAMMER Kinase, LkhA, Affects Aspergillus fumigatus Pathogenicity by Modulating Reproduction and Biosynthesis of
Joo-Yeon Lim1,2, Yeon Ju Kim1, Seul Ah Woo1
1Laboratory of Cellular Differentiation, Department of Microbiology and Molecular Biology, College of Bioscience and Biotechnology, Chungnam National University, Daejeon, South Korea.
Abstract:
The LAMMER kinase in eukaryotes is a well-conserved dual-specificity kinase. Aspergillus species cause a wide spectrum of diseases called aspergillosis in humans, depending on the underlying immune status of the host, such as allergy, aspergilloma, and invasive aspergillosis. Aspergillus fumigatus is the most common opportunistic fungal pathogen that causes invasive aspergillosis. Although LAMMER kinase has various functions in morphology, development, and cell cycle regulation in yeast and filamentous fungi, its function in A. fumigatus is not known. We performed molecular studies on the function of the A. fumigatus LAMMER kinase, AfLkhA, and reported its involvement in multiple cellular processes, including development and virulence. Deletion of AflkhA resulted in defects in colonial growth, production of conidia, and sexual development. Transcription and genetic analyses indicated that AfLkhA modulates the expression of key developmental regulatory genes. The AflkhA-deletion strain showed increased production of gliotoxins and protease activity. When conidia were challenged with alveolar macrophages, enodocytosis of conidia by macrophages was increased in the AflkhA-deletion strain, resulting from changes in expression of the cell wall genes and thus content of cell wall pathogen-associated molecular patterns, including β-1,3-glucan and GM. While T cell-deficient zebrafish larvae were significantly susceptible to wild-type A. fumigatus infection, AflkhA-deletion conidia infection reduced host mortality. A. fumigatus AfLkhA is required for the establishment of virulence factors, including conidial production, mycotoxin synthesis, protease activity, and interaction with macrophages, which ultimately affect pathogenicity at the organismal level.
Insights
The LAMMER kinase AfLkhA in Aspergillus fumigatus is crucial for fungal development and virulence. Deleting AfLkhA impairs growth and conidia production, while increasing toxins and reducing pathogenicity in host models.
Area of Science:
- Mycology
- Molecular Biology
- Pathogen Biology
Background:
- Aspergillus fumigatus causes invasive aspergillosis, a serious human fungal infection.
- LAMMER kinase is a conserved eukaryotic kinase with known roles in fungal development.
- The function of LAMMER kinase in A. fumigatus remained uncharacterized.
Purpose of the Study:
- To investigate the molecular function of the A. fumigatus LAMMER kinase, AfLkhA.
- To determine the role of AfLkhA in fungal development, virulence, and host-pathogen interactions.
Main Methods:
- Molecular studies involving gene deletion (AflkhA).
- Analysis of colonial growth, conidia production, and sexual development.
- Transcriptional and genetic analyses of regulatory genes.
- Assessment of gliotoxin and protease production.
- Macrophage and zebrafish infection models to evaluate virulence.
Main Results:
- Deletion of AflkhA led to defects in colonial growth, conidia production, and sexual development.
- AfLkhA regulates key developmental genes.
- The AflkhA-deletion strain exhibited increased gliotoxin and protease production.
- Enhanced conidial uptake by macrophages and altered cell wall composition in the AflkhA-deletion strain.
- Reduced virulence and host mortality in zebrafish larvae infected with the AflkhA-deletion strain.
Conclusions:
- AfLkhA is essential for A. fumigatus development and virulence.
- AfLkhA controls virulence factors including conidial production, mycotoxin synthesis, protease activity, and macrophage interaction.
- AfLkhA plays a significant role in the overall pathogenicity of A. fumigatus.
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