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Published on: February 14, 2018
The Antifungal and Synergistic Effect of Bisphosphonates in Cryptococcus
Aidan Kane1, Leona Campbell1, Diana Ky1
1School of Life and Environmental Sciences, The University of Sydney, Sydney, New South Wales, Australia.
Abstract:
New treatment strategies are required for cryptococcosis, a leading mycosis in HIV-AIDS patients. Following the identification of Cryptococcus proteins differentially expressed in response to fluconazole, we targeted farnesyl pryrophosphate synthetase (FPPS), an enzyme in the squalene biosynthesis pathway, using nitrogenous bisphosphonates. We hypothesized that these would disrupt squalene synthesis and thereby produce synergy with fluconazole, which acts on a downstream pathway that requires squalene. The susceptibilities of 39 clinical isolates from 6 different species of Cryptococcus were assessed for bisphosphonates and fluconazole, used both independently and in combination. Effective fluconazole-bisphosphonate combinations were then assessed for fungicidal activity, efficacy against biofilms, and ability to resolve cryptococcosis in an invertebrate model. The nitrogenous bisphosphonates risedronate, alendronate, and zoledronate were antifungal against all strains tested. Zoledronate was the most effective (geometric mean MIC = 113.03 mg/liter; risedronate = 378.49 mg/liter; alendronate = 158.4 mg/liter) and was broadly synergistic when combined with fluconazole, with a fractional inhibitory concentration index (FICI) of ≤0.5 in 92% of isolates. Fluconazole and zoledronate in combination were fungicidal in a time-kill assay, inhibited Cryptococcus biofilms, prevented the development of fluconazole resistance, and resolved infection in a nematode model. Supplementation with squalene eliminated bisphosphonate-mediated synergy, demonstrating that synergy was due to the inhibition of squalene biosynthesis. This study demonstrates the utility of targeting squalene synthesis for improving the efficacy of azole-based antifungal drugs and suggests bisphosphonates are promising lead compounds for further antifungal development.
Insights
Nitrogenous bisphosphonates, like zoledronate, show antifungal activity and synergize with fluconazole by inhibiting squalene synthesis. This combination effectively treats cryptococcosis, including biofilms, and prevents resistance in HIV-AIDS patients.
Area of Science:
- Medical Mycology
- Drug Discovery
- Biochemistry
Background:
- Cryptococcosis is a major fungal infection in HIV-AIDS patients, necessitating novel treatments.
- Fluconazole targets downstream pathways, but resistance and limited efficacy persist.
- Farnesyl pyrophosphate synthetase (FPPS) in squalene biosynthesis is a potential drug target.
Purpose of the Study:
- To evaluate nitrogenous bisphosphonates as inhibitors of FPPS and their synergistic potential with fluconazole against Cryptococcus.
- To assess the efficacy of fluconazole-bisphosphonate combinations against various Cryptococcus species, biofilms, and in an animal model.
Main Methods:
- Susceptibility testing of 39 clinical Cryptococcus isolates against bisphosphonates and fluconazole (alone and combined).
- Assessment of fungicidal activity, biofilm inhibition, and resistance prevention in vitro.
- Evaluation of treatment efficacy in a nematode model of cryptococcosis.
Main Results:
- Nitrogenous bisphosphonates (risedronate, alendronate, zoledronate) exhibited antifungal activity.
- Zoledronate was the most potent bisphosphonate and showed broad synergy with fluconazole (FICI ≤ 0.5 in 92% of isolates).
- The combination demonstrated fungicidal activity, inhibited biofilms, prevented resistance, and resolved infection in vivo.
Conclusions:
- Inhibiting squalene biosynthesis via bisphosphonates enhances fluconazole's efficacy against Cryptococcus.
- Bisphosphonates, particularly zoledronate, are promising lead compounds for developing new antifungal therapies.
- Targeting squalene synthesis offers a viable strategy to overcome limitations of current azole-based antifungals.
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