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Molecular Characterization and the Essential Biological Function of the Metal Chaperone Protein MtmA in Aspergillus
Pengfei Zhai1, Yinyan Ma1, Huan Xu1
1Jiangsu Key Laboratory for Microbes and Functional Genomics, College of Life Sciences, Nanjing Normal Universitygrid.260474.3, Nanjing, China.
Abstract:
The detoxification system of reactive oxygen species (ROS) plays critical roles in the survival and virulence of fungal pathogens in infected hosts, while superoxide dismutase (SOD) is the primary ROS scavenger. In the model yeast Saccharomyces cerevisiae, the metal chaperone protein Mtm1 is required for mitochondrial Sod2 activation and responses to oxidative stress. However, the function of the S. cerevisiae Mtm1 homolog in the human fungal pathogen Aspergillus fumigatus has not yet been clarified. In this study, we found that mitochondria-localized MtmA in A. fumigatus, a putative homolog of yeast Mtm1, not only has a similar function to Mtm1 in responding to oxidative stress resistance by affecting SodB (MnSOD) activity but is also essential for hyphal growth such that repressed expression of MtmA results in severe growth defects in A. fumigatus. In addition, the chelation of Zn2+ can obviously rescue growth defects caused by repression of MtmA, suggesting that MtmA may be involved in hyphal growth by affecting cellular Zn2+ detoxification. Moreover, MtmA contains four Mito-carr domains, whereas only the first Mito-carr domain is required for the function of MtmA. Therefore, the findings in this study suggest that MtmA in A. fumigatus has an important and unique function that is different from that in yeast. IMPORTANCE Knowledge of the key factors required for the viability of pathogenic fungi can help to explore new antifungal drugs. Here, we demonstrate that MtmA is involved in responding to oxidative stress by activating mitochondrial SodB activity. MtmA, especially for the first Mito-carr domain, is essential for colony growth by regulating cellular Zn2+ equilibrium and responses to oxidative stress in A. fumigatus. This is the first report of the vital and unique role of the MtmA protein in pathogenic fungi, indicating that it might be a potential antifungal drug target.
Insights
The MtmA protein in Aspergillus fumigatus is vital for fungal survival, aiding in oxidative stress resistance and hyphal growth by managing zinc levels. This discovery highlights MtmA as a potential target for new antifungal drugs.
Area of Science:
- Mycology
- Molecular Biology
- Antifungal Research
Background:
- Reactive oxygen species (ROS) detoxification is crucial for fungal pathogen survival and virulence.
- Superoxide dismutase (SOD) is the primary enzyme scavenging ROS.
- Mtm1, a metal chaperone in yeast, is essential for mitochondrial SOD activation and oxidative stress response.
Purpose of the Study:
- To elucidate the function of the Mtm1 homolog, MtmA, in the human fungal pathogen Aspergillus fumigatus.
- To investigate MtmA's role in oxidative stress resistance, hyphal growth, and potential links to metal homeostasis.
Main Methods:
- Investigated the localization and function of MtmA in A. fumigatus.
- Assessed the impact of MtmA expression levels on oxidative stress resistance and hyphal growth.
- Examined the effect of zinc chelation on growth defects caused by MtmA repression.
- Analyzed the functional domains of MtmA, specifically the Mito-carr domains.
Main Results:
- MtmA localizes to mitochondria and is essential for hyphal growth in A. fumigatus.
- MtmA influences the activity of SodB (MnSOD), contributing to oxidative stress resistance.
- Repression of MtmA leads to severe growth defects, which can be rescued by chelating Zn²⁺, suggesting a role in zinc detoxification.
- Only the first Mito-carr domain of MtmA is critical for its function.
Conclusions:
- MtmA in A. fumigatus possesses unique functions distinct from its yeast homolog, Mtm1.
- MtmA is essential for A. fumigatus viability, regulating cellular zinc equilibrium and oxidative stress responses.
- MtmA represents a promising target for the development of novel antifungal therapies.
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