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Updated: Mar 25, 2026

Small-Scale Plasma Membrane Preparation for the Analysis of Candida albicans Cdr1-mGFPHis
Published on: June 13, 2021
Inhibiting fungal multidrug resistance by disrupting an activator-Mediator interaction
Joy L Nishikawa1,2, Andras Boeszoermenyi3, Luis A Vale-Silva4
1Massachusetts General Hospital Cancer Center, Charlestown, Massachusetts 02129, USA.
Abstract:
Eukaryotic transcription activators stimulate the expression of specific sets of target genes through recruitment of co-activators such as the RNA polymerase II-interacting Mediator complex. Aberrant function of transcription activators has been implicated in several diseases. However, therapeutic targeting efforts have been hampered by a lack of detailed molecular knowledge of the mechanisms of gene activation by disease-associated transcription activators. We previously identified an activator-targeted three-helix bundle KIX domain in the human MED15 Mediator subunit that is structurally conserved in Gal11/Med15 Mediator subunits in fungi. The Gal11/Med15 KIX domain engages pleiotropic drug resistance transcription factor (Pdr1) orthologues, which are key regulators of the multidrug resistance pathway in Saccharomyces cerevisiae and in the clinically important human pathogen Candida glabrata. The prevalence of C. glabrata is rising, partly owing to its low intrinsic susceptibility to azoles, the most widely used antifungal agent. Drug-resistant clinical isolates of C. glabrata most commonly contain point mutations in Pdr1 that render it constitutively active, suggesting that this transcriptional activation pathway represents a linchpin in C. glabrata multidrug resistance. Here we perform sequential biochemical and in vivo high-throughput screens to identify small-molecule inhibitors of the interaction of the C. glabrata Pdr1 activation domain with the C. glabrata Gal11A KIX domain. The lead compound (iKIX1) inhibits Pdr1-dependent gene activation and re-sensitizes drug-resistant C. glabrata to azole antifungals in vitro and in animal models for disseminated and urinary tract C. glabrata infection. Determining the NMR structure of the C. glabrata Gal11A KIX domain provides a detailed understanding of the molecular mechanism of Pdr1 gene activation and multidrug resistance inhibition by iKIX1. We have demonstrated the feasibility of small-molecule targeting of a transcription factor-binding site in Mediator as a novel therapeutic strategy in fungal infectious disease.
Insights
Researchers developed a small molecule inhibitor (iKIX1) targeting the Mediator complex to combat drug-resistant fungal infections. This approach re-sensitizes resistant Candida glabrata to antifungals, offering a novel therapeutic strategy for infectious diseases.
Area of Science:
- Molecular Biology
- Medicinal Chemistry
- Mycology
Background:
- Transcription activators regulate gene expression via co-activators like the Mediator complex.
- Dysfunctional transcription activators are linked to diseases, but targeted therapies are limited by molecular understanding.
- Candida glabrata, a rising fungal pathogen, exhibits azole antifungal resistance due to mutations in the Pdr1 transcription factor.
Purpose of the Study:
- To identify small-molecule inhibitors of the Pdr1-Gal11A KIX domain interaction in Candida glabrata.
- To explore small-molecule targeting of Mediator complex interactions as a therapeutic strategy against drug-resistant fungal infections.
Main Methods:
- Sequential biochemical and in vivo high-throughput screening to identify inhibitors.
- Nuclear Magnetic Resonance (NMR) structure determination of the Candida glabrata Gal11A KIX domain.
- In vitro and animal model testing of lead compound efficacy against drug-resistant C. glabrata.
Main Results:
- Identified a lead compound, iKIX1, that inhibits the Pdr1-Gal11A KIX domain interaction.
- iKIX1 effectively inhibits Pdr1-dependent gene activation in C. glabrata.
- iKIX1 re-sensitizes azole-resistant C. glabrata to azole antifungals in vitro and in vivo animal models.
- NMR structure elucidated the molecular mechanism of inhibition.
Conclusions:
- Small-molecule targeting of transcription factor-binding sites within the Mediator complex is a feasible therapeutic strategy for fungal infectious diseases.
- iKIX1 demonstrates potential as a novel agent to overcome azole resistance in Candida glabrata infections.
- Understanding the molecular interactions of transcription activators and Mediator provides new avenues for drug development.
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