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HapX positively and negatively regulates the transcriptional response to iron deprivation in Cryptococcus neoformans
Won Hee Jung1, Sanjay Saikia, Guanggan Hu
1Department of Biotechnology, Chung-Ang University, Gyeonggi-Do, Republic of Korea.
Abstract:
The fungal pathogen Cryptococcus neoformans is a major cause of illness in immunocompromised individuals such as AIDS patients. The ability of the fungus to acquire nutrients during proliferation in host tissue and the ability to elaborate a polysaccharide capsule are critical determinants of disease outcome. We previously showed that the GATA factor, Cir1, is a major regulator both of the iron uptake functions needed for growth in host tissue and the key virulence factors such as capsule, melanin and growth at 37°C. We are interested in further defining the mechanisms of iron acquisition from inorganic and host-derived iron sources with the goal of understanding the nutritional adaptation of C. neoformans to the host environment. In this study, we investigated the roles of the HAP3 and HAPX genes in iron utilization and virulence. As in other fungi, the C. neoformans Hap proteins negatively influence the expression of genes encoding respiratory and TCA cycle functions under low-iron conditions. However, we also found that HapX plays both positive and negative roles in the regulation of gene expression, including a positive regulatory role in siderophore transporter expression. In addition, HapX also positively regulated the expression of the CIR1 transcript. This situation is in contrast to the negative regulation by HapX of genes encoding GATA iron regulatory factors in Aspergillus nidulans and Schizosaccharomyces pombe. Although both hapX and hap3 mutants were defective in heme utilization in culture, only HapX made a contribution to virulence, and loss of HapX in a strain lacking the high-affinity iron uptake system did not cause further attenuation of disease. Therefore, HapX appears to have a minimal role during infection of mammalian hosts and instead may be an important regulator of environmental iron uptake functions. Overall, these results indicated that C. neoformans employs multiple strategies for iron acquisition during infection.
Insights
Cryptococcus neoformans uses multiple strategies for iron acquisition. The HapX gene plays a key role in regulating iron uptake and virulence, with a minimal role during mammalian host infection.
Area of Science:
- Medical Mycology
- Molecular Biology
- Pathogen Nutrition
Background:
- Cryptococcus neoformans is a fungal pathogen causing severe illness in immunocompromised individuals.
- Iron acquisition and capsule formation are critical for C. neoformans virulence.
- The GATA factor Cir1 regulates iron uptake and virulence factors like capsule and melanin.
Purpose of the Study:
- To define mechanisms of iron acquisition by C. neoformans from various sources.
- To understand the nutritional adaptation of C. neoformans in the host environment.
- To investigate the roles of HAP3 and HAPX genes in iron utilization and virulence.
Main Methods:
- Investigated the roles of HAP3 and HAPX genes in C. neoformans.
- Analyzed gene expression under low-iron conditions.
- Assessed the contribution of HAPX to virulence in a murine model.
Main Results:
- Hap proteins negatively regulate respiratory and TCA cycle genes under low iron.
- HapX positively regulates siderophore transporter and CIR1 gene expression.
- HapX contributes to virulence, but its role is minimal in mammalian host infection.
Conclusions:
- C. neoformans employs multiple strategies for iron acquisition during infection.
- HapX is an important regulator of environmental iron uptake functions.
- Hap3 and HapX are involved in heme utilization but HapX has a more significant role in virulence.
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