The transcription factor Cas5 suppresses hyphal morphogenesis during yeast-form growth in Candida albicans
- PMID: 34491522
- DOI: 10.1007/s12275-021-1326-y
The transcription factor Cas5 suppresses hyphal morphogenesis during yeast-form growth in Candida albicans
Erratum in
-
Erratum to: The transcription factor Cas5 suppresses hyphal morphogenesis during yeast-form growth in Candida albicans.J Microbiol. 2021 Nov;59(11):1063. doi: 10.1007/s12275-021-0326-2. J Microbiol. 2021. PMID: 34724181 No abstract available.
Abstract
Candida albicans is an opportunistic human pathogen that exists as yeast, hyphal or pseudohyphal forms depending on pH, nutrients, and temperature. The morphological transition from yeast to hyphae, which is required for the complete virulence of C. albicans, is controlled by many transcription factors that activate or repress hypha-specific genes. The C. albicans transcriptional factor Cas5, a key regulator of genes involved in cell wall integrity, affects the susceptibility of C. albicans to fluconazole, an inhibitor of ergosterol synthesis. In this study, we found that deletion of CAS5 in C. albicans decreased the expression levels of a set of ergosterol biosynthesis genes, such as ERG2, ERG3, ERG5, ERG6, ERG11, and ERG24, resulting in the accumulation of lanosterol and zymosterol, which are intermediate metabolites in the ergosterol biosynthesis pathway. Interestingly, it was observed that the cas5Δ/Δ mutant could not maintain the yeast form under non-hypha-inducing conditions, while the CAS5-overexpressing cells could not form hyphae under hypha-inducing conditions. Consistent with these observations, the cas5Δ/Δ mutant highly expressed hypha-specific genes, ALS3, ECE1, and HWP1, under non-hypha-inducing conditions. In addition, CAS5 transcription was significantly downregulated immediately after hyphal initiation in the wild-type strain. Furthermore, the cas5Δ/Δ mutant reduced the transcription of NRG1, which encodes a major repressor of hyphal morphogenesis, while Cas5 overexpression increased the transcription of NRG1 under hypha-inducing conditions. Collectively, this study suggests the potential role of Cas5 as a repressor of hypha-specific genes during yeast-form growth of C. albicans.
Keywords: Candida albicans; ergosterol; hypha formation; transcription factor Cas5.
© 2021. The Microbiological Society of Korea.
Similar articles
-
Hgc1, a novel hypha-specific G1 cyclin-related protein regulates Candida albicans hyphal morphogenesis.EMBO J. 2004 Apr 21;23(8):1845-56. doi: 10.1038/sj.emboj.7600195. Epub 2004 Apr 8. EMBO J. 2004. PMID: 15071502 Free PMC article.
-
Genetic Analysis of Sirtuin Deacetylases in Hyphal Growth of Candida albicans.mSphere. 2021 May 5;6(3):e00053-21. doi: 10.1128/mSphere.00053-21. mSphere. 2021. PMID: 33952658 Free PMC article.
-
A GATA transcription factor recruits Hda1 in response to reduced Tor1 signaling to establish a hyphal chromatin state in Candida albicans.PLoS Pathog. 2012;8(4):e1002663. doi: 10.1371/journal.ppat.1002663. Epub 2012 Apr 19. PLoS Pathog. 2012. PMID: 22536157 Free PMC article.
-
Hyphal development in Candida albicans from different cell states.Curr Genet. 2018 Dec;64(6):1239-1243. doi: 10.1007/s00294-018-0845-5. Epub 2018 May 23. Curr Genet. 2018. PMID: 29796903 Review.
-
Candida albicans hyphal initiation and elongation.Trends Microbiol. 2014 Dec;22(12):707-14. doi: 10.1016/j.tim.2014.09.001. Epub 2014 Sep 25. Trends Microbiol. 2014. PMID: 25262420 Free PMC article. Review.
Cited by
-
The Role of Sfp1 in Candida albicans Cell Wall Maintenance.J Fungi (Basel). 2022 Nov 13;8(11):1196. doi: 10.3390/jof8111196. J Fungi (Basel). 2022. PMID: 36422017 Free PMC article.
-
Cas5 Regulates the Exposure of β-Glucan, the Cell Surface Hydrophobicity, and the Expression of Cell Wall Proteins to Remodel the Candida albicans Cell Wall and Participates in the Recruitment of Neutrophils.Microorganisms. 2025 Mar 19;13(3):683. doi: 10.3390/microorganisms13030683. Microorganisms. 2025. PMID: 40142575 Free PMC article.
References
-
- Arthington-Skaggs, B.A., Jradi, H., Desai, T., and Morrison, C.J. 1999. Quantitation of ergosterol content: novel method for determination of fluconazole susceptibility of Candida albicans. J. Clin. Microbiol.37, 3332–3337. - DOI
-
- Bhattacharya, S., Sae-Tia, S., and Fries, B.C. 2020. Candidiasis and mechanisms of antifungal resistance. Antibiotics9, 312. - DOI
-
- Braun, B.R., Kadosh, D., and Johnson, A.D. 2001. NRG1, a repressor of filamentous growth in C. albicans, is down-regulated during filament induction. EMBO J.20, 4753–4761. - DOI
-
- Bruno, V.M., Kalachikov, S., Subaran, R., Nobile, C.J., Kyratsous, C., and Mitchell, A.P. 2006. Control of the C. albicans cell wall damage response by transcriptional regulator Cas5. PLoS Pathog.2, e21. - DOI
-
- Calderone, R.A. and Fonzi, W.A. 2001. Virulence factors of Candida albicans. Trends Microbiol.9, 327–335. - DOI
MeSH terms
Substances
LinkOut - more resources
Full Text Sources