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Calcineurin Inhibitors Synergize with Manogepix to Kill Diverse Human Fungal Pathogens
Sean D Liston1, Luke Whitesell1, Mili Kapoor2
1Department of Molecular Genetics, University of Toronto, Toronto, ON M5G 1M1, Canada.
Abstract:
Invasive fungal infections have mortality rates of 30-90%, depending on patient co-morbidities and the causative pathogen. The frequent emergence of drug resistance reduces the efficacy of currently approved treatment options, highlighting an urgent need for antifungals with new modes of action. Addressing this need, fosmanogepix (N-phosphonooxymethylene prodrug of manogepix; MGX) is the first in a new class of gepix drugs, and acts as a broad-spectrum, orally bioavailable inhibitor of the essential fungal glycosylphosphatidylinositol (GPI) acyltransferase Gwt1. MGX inhibits the growth of diverse fungal pathogens and causes accumulation of immature GPI-anchored proteins in the fungal endoplasmic reticulum. Relevant to the ongoing clinical development of fosmanogepix, we report a synergistic, fungicidal interaction between MGX and inhibitors of the protein phosphatase calcineurin against important human fungal pathogens. To investigate this synergy further, we evaluated a library of 124 conditional expression mutants covering 95% of the genes encoding proteins involved in GPI-anchor biosynthesis or proteins predicted to be GPI-anchored. Strong negative chemical-genetic interactions between the calcineurin inhibitor FK506 and eleven GPI-anchor biosynthesis genes were identified, indicating that calcineurin signalling is required for fungal tolerance to not only MGX, but to inhibition of the GPI-anchor biosynthesis pathway more broadly. Depletion of these GPI-anchor biosynthesis genes, like MGX treatment, also exposed fungal cell wall (1→3)-β-D-glucans. Taken together, these findings suggest the increased risk of invasive fungal infections associated with use of calcineurin inhibitors as immunosuppressants may be mitigated by their synergistic fungicidal interaction with (fos)manogepix and its ability to enhance exposure of immunostimulatory glucans.
Insights
Fosmanogepix (MGX), a novel antifungal, shows synergistic killing with calcineurin inhibitors against fungal infections. This combination therapy may reduce risks associated with immunosuppressive calcineurin inhibitors.
Area of Science:
- Mycology
- Infectious Diseases
- Pharmacology
Background:
- Invasive fungal infections (IFIs) have high mortality rates (30-90%) and increasing drug resistance.
- Novel antifungals with new mechanisms of action are urgently needed.
- Fosmanogepix (MGX) is a novel, orally bioavailable gepix drug inhibiting fungal Gwt1, essential for glycosylphosphatidylinositol (GPI) anchor biosynthesis.
Purpose of the Study:
- To investigate the synergistic interaction between MGX and calcineurin inhibitors against human fungal pathogens.
- To identify genes involved in fungal tolerance to MGX and calcineurin inhibition.
- To explore the clinical implications of this synergy for managing IFIs in immunosuppressed patients.
Main Methods:
- Evaluated synergistic, fungicidal interactions between MGX and calcineurin inhibitors (e.g., FK506).
- Assessed a library of 124 conditional expression mutants in GPI-anchor biosynthesis and GPI-anchored proteins.
- Analyzed chemical-genetic interactions and fungal cell wall composition.
Main Results:
- A synergistic, fungicidal interaction was observed between MGX and calcineurin inhibitors against key fungal pathogens.
- Eleven GPI-anchor biosynthesis genes showed negative genetic interactions with FK506, indicating calcineurin signaling is crucial for fungal tolerance.
- MGX treatment and depletion of GPI-anchor biosynthesis genes exposed fungal (1→3)-β-D-glucans.
Conclusions:
- Calcineurin signaling is essential for fungal tolerance to both MGX and broader inhibition of GPI-anchor biosynthesis.
- The synergistic interaction between MGX and calcineurin inhibitors offers a potential therapeutic strategy for IFIs.
- This combination may mitigate the increased IFI risk in patients taking calcineurin inhibitors by enhancing immunostimulatory glucan exposure.
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