RgsA Attenuates the PKA Signaling, Stress Response, and Virulence in the Human Opportunistic Pathogen Aspergillus
Hnin Phyu Lwin1, Yong-Ho Choi1, Min-Woo Lee2
1Department of Microbiology, Graduate School, Daejeon University, Daejeon 34520, Korea.
Abstract:
The regulator of G-protein signaling (RGS) proteins play an important role in upstream control of heterotrimeric G-protein signaling pathways. In the genome of the human opportunistic pathogenic fungus Aspergillus fumigatus, six RGS protein-encoding genes are present. To characterize the rgsA gene predicted to encode a protein with an RGS domain, we generated an rgsA null mutant and observed the phenotypes of the mutant. The deletion (Δ) of rgsA resulted in increased radial growth and enhanced asexual sporulation in both solid and liquid culture conditions. Accordingly, transcripts levels of the key asexual developmental regulators abaA, brlA, and wetA are elevated in the ΔrgsA mutant. Moreover, ΔrgsA resulted in elevated spore germination rates in the absence of a carbon source. The activity of cAMP-dependent protein kinase A (PKA) and mRNA levels of genes encoding PKA signaling elements are elevated by ΔrgsA. In addition, mRNA levels of genes associated with stress-response signaling increased with the lack of rgsA, and the ΔrgsA spores showed enhanced tolerance against oxidative stressors. Comparative transcriptomic analyses revealed that the ΔrgsA mutant showed higher mRNA levels of gliotoxin (GT) biosynthetic genes. Accordingly, the rgsA null mutant exhibited increased production of GT and elevated virulence in the mouse. Conversely, the majority of genes encoding glucan degrading enzymes were down-regulated by ΔrgsA, and endoglucanase activities were reduced. In summary, RgsA plays multiple roles, governing growth, development, stress responses, virulence, and external polymer degradation-likely by attenuating PKA signaling.
Insights
The regulator of G-protein signaling A (RgsA) in Aspergillus fumigatus controls growth, development, and virulence. Deleting RgsA enhances fungal growth, sporulation, and virulence, likely by affecting cAMP-dependent protein kinase A signaling.
Area of Science:
- Mycology
- Molecular Biology
- Fungal Pathogenesis
Background:
- Regulator of G-protein signaling (RGS) proteins are key regulators of G-protein signaling pathways.
- The opportunistic fungal pathogen *Aspergillus fumigatus* possesses six RGS protein-encoding genes.
Purpose of the Study:
- To characterize the function of the *rgsA* gene in *Aspergillus fumigatus*.
- To investigate the role of RgsA in fungal growth, development, stress response, and virulence.
Main Methods:
- Generation of an *rgsA* null mutant (Δ*rgsA*) in *Aspergillus fumigatus*.
- Phenotypic analysis of the Δ*rgsA* mutant, including growth rate, sporulation, and spore germination.
- Gene expression analysis using transcriptomics and quantitative PCR.
- Assessment of virulence in a mouse model and gliotoxin production.
Main Results:
- Δ*rgsA* mutant exhibited increased radial growth, asexual sporulation, and spore germination.
- Elevated transcript levels of asexual developmental regulators (*abaA*, *brlA*, *wetA*) and PKA signaling elements.
- Enhanced tolerance to oxidative stress and increased gliotoxin (GT) production and virulence.
- Down-regulation of glucan degrading enzyme genes and reduced endoglucanase activity.
Conclusions:
- RgsA negatively regulates growth, asexual development, and virulence in *Aspergillus fumigatus*.
- RgsA likely attenuates PKA signaling, impacting multiple cellular processes.
- RgsA plays a significant role in fungal pathogenesis and adaptation to environmental conditions.
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