Regulatory features of Candida albicans hemin-induced filamentation
Liping Xiong1, Katharina Goerlich1, Aaron P Mitchell1
1Department of Microbiology, University of Georgia, Athens, GA 30602, USA.
Abstract:
Candida albicans is a prominent fungal pathogen that can infect the bloodstream and deep tissues. One key pathogenicity trait is the ability to transition between yeast and hyphal growth. Hyphae are critical for the formation of biofilms, which in turn enable device-associated infection. Among signals that drive hypha formation is the presence of hemin, an oxidized Fe(III)-containing heme derivative found in blood. In this study, we asked 4 questions. First, how uniform is the filamentation response to hemin among C. albicans strains? We tested 26 diverse isolates and found that the strength of a strain's filamentation response to hemin reflected its filamentation level in the absence of hemin. Second, does hemin induce biofilm formation? Hemin biofilm induction was evident in 5 out of 10 isolates tested, including most of the weaker biofilm formers tested. Third, what is the gene expression response to hemin? We compared RNA-seq data for type strain SC5314 grown in pH 5.5 minimal media with or without hemin. We also compared that response to SC5314 grown in pH 7.0 minimal media, where it undergoes well-studied pH-dependent filamentation. We found a common set of 72 genes with upregulated RNA levels in response to both signals, including many known hypha-associated genes. Surprisingly, overlap among those 72 genes with 2 recent consensus definitions of hypha-associated genes was limited to only 16 genes. Fourth, which regulators govern hemin-induced filamentation? A mutant survey indicated that the response depends upon filamentation regulators Efg1, Brg1, and Rim101, but not upon heme acquisition regulator Hap1 or its target genes HMX1, RBT5, PGA10, PGA7, and CSA2. These findings argue that hemin induces hypha formation independently of its utilization.
Insights
Hemin, a blood component, triggers hypha formation in Candida albicans, a key fungal pathogen. This process is strain-dependent and regulated by specific genes, independent of heme utilization.
Area of Science:
- Mycology
- Medical Microbiology
- Molecular Biology
Background:
- Candida albicans is a major fungal pathogen causing bloodstream and tissue infections.
- Hyphal growth is crucial for biofilm formation and device-associated infections.
- Hemin, a heme derivative in blood, is a known inducer of hypha formation.
Purpose of the Study:
- To investigate the uniformity of hemin-induced filamentation in C. albicans strains.
- To determine if hemin induces biofilm formation.
- To analyze the gene expression and regulatory mechanisms underlying hemin-induced hypha formation.
Main Methods:
- Tested filamentation response to hemin across 26 C. albicans isolates.
- Assessed hemin's effect on biofilm formation in 10 isolates.
- Utilized RNA-sequencing to compare gene expression with and without hemin.
- Conducted a mutant survey of key regulators.
Main Results:
- Filamentation response to hemin varied among strains and correlated with basal filamentation levels.
- Hemin induced biofilm formation in 50% of tested isolates, particularly weaker biofilm formers.
- A common set of 72 genes were upregulated by both hemin and pH 7.0, with limited overlap to consensus hypha-associated genes.
- Hemin-induced filamentation relies on regulators Efg1, Brg1, and Rim101, but not on heme acquisition regulator Hap1.
Conclusions:
- Hemin-induced hypha formation in C. albicans is a strain-dependent phenomenon.
- Hemin can promote biofilm formation, contributing to pathogenicity.
- The gene expression and regulatory pathways for hemin-induced filamentation are distinct from those involved in heme utilization.
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