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Small-Scale Plasma Membrane Preparation for the Analysis of Candida albicans Cdr1-mGFPHis
Published on: June 13, 2021
Multidrug-resistant transporter mdr1p-mediated uptake of a novel antifungal compound
Nuo Sun1, Dongmei Li, William Fonzi
1Georgetown University Medical Center, Department of Microbiology & Immunology, Washington, DC, USA.
Abstract:
The activity of many anti-infectious drugs has been compromised by the evolution of multidrug-resistant (MDR) pathogens. For life-threatening fungal infections, such as those caused by Candida albicans, overexpression of MDR1, which encodes an MDR efflux pump of the major facilitator superfamily (MFS), often confers resistance to chemically unrelated substances, including the most commonly used azole antifungals. As the development of new and efficacious antifungals has lagged far behind the growing emergence of resistant strains, it is imperative to develop strategies to overcome multidrug resistance. Previous advances have been mainly to deploy combinational therapy to restore azole susceptibility, which, however, requires coordination of two or more compounds. We observed a unique phenotype in which Mdr1p facilitates the uptake of a specific class of compounds. Among them, we describe a novel antifungal small molecule, bis[1,6-a:5',6'-g]quinolizinium 8-methyl-salt (BQM) (U.S. patent application no. 61/793,090,2013), that has potent and broad antifungal activity. Notably, BQM exploits the MDR phenotype in C. albicans to promote the inhibitory effect. Rather than causing an antagonism of MDR strains, it exhibits a highly potentiated activity against a collection of clinical isolates and lab strains that overexpress MDR1. The activity of BQM against MDR1-overexpressing isolates is due to its facilitated intracellular accumulation. Microarray comparisons showed an extensive upregulation of MDR1 as well as polyamine transporter genes in a fluconazole-resistant strain. We then demonstrated that the polyamine transporters augment the accumulation of BQM. Importantly, BQM had greater activity than fluconazole and itraconazole against various fungal pathogens, including MDR Aspergillus fumigatus. Thus, our findings offer a paradigm shift to overcome MDR and the promise of improving antifungal treatment, especially in MDR pathogens.
Insights
A novel antifungal compound, bis[1,6-a:5',6'-g]quinolizinium 8-methyl-salt (BQM), effectively targets multidrug-resistant (MDR) fungal pathogens. BQM exploits the MDR efflux pump to enhance its accumulation and activity, offering a new strategy against resistant infections.
Area of Science:
- Mycology
- Medicinal Chemistry
- Molecular Biology
Background:
- Multidrug-resistant (MDR) pathogens compromise anti-infective drug efficacy.
- Overexpression of the MDR1 efflux pump in Candida albicans confers resistance to azole antifungals.
- Developing new antifungals is crucial due to the rise of resistant strains.
Purpose of the Study:
- To identify novel strategies to overcome multidrug resistance in fungal infections.
- To investigate a new antifungal small molecule, bis[1,6-a:5",6"-g]quinolizinium 8-methyl-salt (BQM), for its activity against MDR fungal pathogens.
- To elucidate the mechanism of BQM's action in MDR strains.
Main Methods:
- Phenotypic observation of Mdr1p facilitating compound uptake.
- Antifungal activity assays against clinical and laboratory strains of Candida albicans and Aspergillus fumigatus.
- Microarray analysis to identify upregulated genes in resistant strains.
- Investigating the role of polyamine transporters in BQM accumulation.
Main Results:
- BQM exhibits potent and broad antifungal activity, particularly against MDR strains overexpressing MDR1.
- BQM's efficacy is due to facilitated intracellular accumulation mediated by MDR1 and polyamine transporters.
- BQM demonstrated superior activity compared to fluconazole and itraconazole against various fungal pathogens, including MDR Aspergillus fumigatus.
Conclusions:
- BQM represents a novel therapeutic approach to combat multidrug resistance in fungal infections.
- Exploiting MDR mechanisms offers a promising strategy to improve antifungal treatment efficacy.
- This discovery provides a paradigm shift in overcoming MDR fungal pathogens.
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