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RTA1 Is Involved in Resistance to 7-Aminocholesterol and Secretion of Fungal Proteins in Cryptococcus neoformans
Emily S Smith-Peavler1, Ronakkumar Patel2, Adejumoke Mary Onumajuru1
1Department of Biology, Middle Tennessee State University, Murfreesboro, TN 37132, USA.
Abstract:
Cryptococcus neoformans (Cn) is a pathogenic yeast that is the leading cause of fungal meningitis in immunocompromised patients. Various Cn virulence factors, such as the enzyme laccase and its product melanin, phospholipase, and capsular polysaccharide have been identified. During a screen of knockout mutants, the gene resistance to aminocholesterol 1 (RTA1) was identified, the function of which is currently unknown in Cn. Rta1 homologs in S. cerevisiae belong to a lipid-translocating exporter family of fungal proteins with transmembrane regions and confer resistance to the antimicrobial agent 7-aminocholesterol when overexpressed. To determine the role of RTA1 in Cn, the knock-out (rta1Δ) and reconstituted (rta1Δ+RTA1) strains were created and phenotypically tested. RTA1 was involved in resistance to 7-aminocholesterol, and also in exocyst complex component 3 (Sec6)-mediated secretion of urease, laccase, and the major capsule component, glucuronoxylomannan (GXM), which coincided with significantly smaller capsules in the rta1Δ and rta1Δ+RTA1 strains compared to the wild-type H99 strain. Furthermore, RTA1 expression was reduced in a secretory 14 mutant (sec14Δ) and increased in an RNAi Sec6 mutant. Transmission electron microscopy demonstrated vesicle accumulation inside the rta1Δ strain, predominantly near the cell membrane. Given that Rta1 is likely to be a transmembrane protein located at the plasma membrane, these data suggest that Rta1 may be involved in both secretion of various fungal virulence factors and resistance to 7-aminocholesterol in Cn.
Insights
The gene RTA1 in Cryptococcus neoformans is crucial for secreting virulence factors and resisting antimicrobial agents. Its absence leads to smaller capsules and impaired secretion, impacting fungal meningitis.
Area of Science:
- Mycology
- Infectious Diseases
- Molecular Biology
Background:
- Cryptococcus neoformans (Cn) causes fungal meningitis in immunocompromised individuals.
- Known virulence factors include laccase, melanin, phospholipase, and capsular polysaccharide.
- The function of the RTA1 gene in Cn is currently unknown.
Purpose of the Study:
- To investigate the role of the RTA1 gene in Cryptococcus neoformans.
- To determine RTA1's involvement in virulence factor secretion and antimicrobial resistance.
Main Methods:
- Creation and phenotypic testing of RTA1 knockout (rta1Δ) and reconstituted (rta1Δ+RTA1) strains.
- Analysis of RTA1's role in resistance to 7-aminocholesterol.
- Assessment of RTA1's involvement in the secretion of urease, laccase, and glucuronoxylomannan (GXM).
- Examination of RTA1 expression in other mutants (sec14Δ, Sec6 RNAi).
- Transmission electron microscopy to observe cellular structures in the rta1Δ strain.
Main Results:
- RTA1 is involved in resistance to 7-aminocholesterol.
- RTA1 mediates the secretion of urease, laccase, and GXM via the Sec6 pathway.
- rta1Δ strains exhibit significantly smaller capsules and accumulation of intracellular vesicles.
- RTA1 expression is inversely correlated with Sec14 and Sec6 function.
Conclusions:
- RTA1 plays a significant role in Cryptococcus neoformans virulence.
- RTA1 is likely a plasma membrane protein involved in the secretion of key virulence factors.
- RTA1 contributes to both antimicrobial resistance and capsule formation in C. neoformans.
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