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.

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.