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Candida albicans Swi/Snf and Mediator Complexes Differentially Regulate Mrr1-Induced MDR1 Expression and Fluconazole
Zhongle Liu1, Lawrence C Myers2,1
1Department of Biochemistry and Cell Biology, Geisel School of Medicine at Dartmouth, Hanover, New Hampshire, USA.
Abstract:
Long-term azole treatment of patients with chronic Candida albicans infections can lead to drug resistance. Gain-of-function (GOF) mutations in the transcription factor Mrr1 and the consequent transcriptional activation of MDR1, a drug efflux coding gene, is a common pathway by which this human fungal pathogen acquires fluconazole resistance. This work elucidates the previously unknown downstream transcription mechanisms utilized by hyperactive Mrr1. We identified the Swi/Snf chromatin remodeling complex as a key coactivator for Mrr1, which is required to maintain basal and induced open chromatin, and Mrr1 occupancy, at the MDR1 promoter. Deletion of snf2, the catalytic subunit of Swi/Snf, largely abrogates the increases in MDR1 expression and fluconazole MIC observed in MRR1GOF mutant strains. Mediator positively and negatively regulates key Mrr1 target promoters. Deletion of the Mediator tail module med3 subunit reduces, but does not eliminate, the increased MDR1 expression and fluconazole MIC conferred by MRR1GOF mutations. Eliminating the kinase activity of the Mediator Ssn3 subunit suppresses the decreased MDR1 expression and fluconazole MIC of the snf2 null mutation in MRR1GOF strains. Ssn3 deletion also suppresses MDR1 promoter histone displacement defects in snf2 null mutants. The combination of this work with studies on other hyperactive zinc cluster transcription factors that confer azole resistance in fungal pathogens reveals a complex picture where the induction of drug efflux pump expression requires the coordination of multiple coactivators. The observed variations in transcription factor and target promoter dependence of this process may make the search for azole sensitivity-restoring small molecules more complicated.
Insights
Gain-of-function mutations in Mrr1 activate MDR1, causing fluconazole resistance in Candida albicans. The Swi/Snf complex and Mediator are key coactivators, revealing complex transcriptional mechanisms for drug resistance.
Area of Science:
- Molecular Biology
- Mycology
- Genetics
Background:
- Chronic Candida albicans infections treated with azoles can lead to drug resistance.
- Gain-of-function (GOF) mutations in the transcription factor Mrr1 activate MDR1, a drug efflux gene, conferring fluconazole resistance.
Purpose of the Study:
- To elucidate the downstream transcriptional mechanisms employed by hyperactive Mrr1.
- To identify coactivators involved in Mrr1-mediated transcriptional activation of MDR1.
Main Methods:
- Investigated the role of the Swi/Snf chromatin remodeling complex and Mediator in Mrr1-driven gene expression.
- Utilized gene deletion strategies targeting key subunits like Snf2 and Med3.
- Assessed the impact on MDR1 expression and fluconazole minimum inhibitory concentrations (MICs).
Main Results:
- The Swi/Snf complex is essential for maintaining open chromatin and Mrr1 occupancy at the MDR1 promoter.
- Deletion of Snf2 abrogates increased MDR1 expression and fluconazole resistance in MRR1GOF mutants.
- Mediator subunits (Med3, Ssn3) modulate MDR1 expression, with Ssn3 kinase activity influencing Snf2-dependent effects.
Conclusions:
- Hyperactive Mrr1 utilizes Swi/Snf and Mediator as coactivators to induce MDR1 expression and confer fluconazole resistance.
- Coordination of multiple coactivators is crucial for drug efflux pump induction.
- Variations in these mechanisms complicate the development of small molecules to restore azole sensitivity.

