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Tackling multi-drug resistant fungi by efflux pump inhibitors
1Department of Natural Products, Chemical Sciences, National Institute of Pharmaceutical Education and Research-Hyderabad, Hyderabad, Balanagar 500037, India.
Abstract:
The emergence of multidrug-resistant fungi is of grave concern, and its infections are responsible for significant deaths among immunocompromised patients. The treatment of fungal infections primarily relies on a clinical class of antibiotics, including azoles, polyenes, echinocandins, polyketides, and a nucleotide analogue. However, the incidence of fungal infections is increasing as the treatment for human and plant fungal infections overlaps with antifungal drugs. The need for new antifungal agents acting on different targets than known targets is undeniable. Also, the pace at which loss of fungal susceptibility to antibiotics cannot be undermined. There are several modes by which fungi can develop resistance to antibiotics, including reduced drug uptake, drug target alteration, and a reduction in the cellular concentration of the drug due to active extrusions and biofilm formation. The efflux pump's overexpression in the fungi primarily reduced the antibiotic's concentration to a sub-lethal concentration, thus responsible for developing resistant fungus strains. Several strategies are used to check antibiotic resistance in multi-drug resistant fungi, including synthesizing antibiotic analogs and giving antibiotics in combination therapies. Among them, the efflux pump protein inhibitors are considered potential adjuvants to antibiotics and can block the efflux of antibiotics by inhibiting efflux pump protein transporters. Moreover, it can sensitize the antifungal drugs to multi-drug resistant fungi with overexpressed efflux pump proteins. This review discusses the natural lead molecules, repurposable drugs, and formulation strategies to overcome the efflux pump activity in the fungi.
Insights
Multidrug-resistant fungi pose a significant threat. This review explores strategies like efflux pump inhibitors to combat antifungal resistance by blocking drug expulsion and sensitizing fungi to existing treatments.
Area of Science:
- Mycology
- Antimicrobial Resistance
- Drug Discovery
Background:
- Multidrug-resistant fungal infections are a growing global health concern, particularly for immunocompromised individuals.
- Current antifungal treatments (azoles, polyenes, echinocandins) face increasing resistance due to fungal mechanisms like efflux pump overexpression.
- The overlap in antifungal drug use for human and plant pathogens exacerbates resistance development.
Purpose of the Study:
- To review novel strategies for overcoming efflux pump-mediated antifungal resistance.
- To highlight natural compounds, repurposed drugs, and formulation approaches as potential solutions.
- To address the urgent need for new antifungal agents targeting different pathways.
Main Methods:
- Literature review focusing on efflux pump mechanisms in fungi.
- Analysis of natural products and existing drugs with potential to inhibit efflux pumps.
- Exploration of formulation strategies to enhance antifungal drug efficacy.
Main Results:
- Efflux pump overexpression is a key mechanism reducing intracellular drug concentration, leading to resistance.
- Inhibiting efflux pumps can restore susceptibility to existing antifungals.
- Natural lead molecules, repurposed drugs, and advanced formulations show promise in overcoming resistance.
Conclusions:
- Targeting fungal efflux pumps is a viable strategy to combat multidrug resistance.
- Combination therapies and efflux pump inhibitors can enhance the effectiveness of current antifungals.
- Further research into natural products, drug repurposing, and novel formulations is crucial for developing new antifungal treatments.
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