Abstract
The enzyme inositol phosphorylceramide (IPC) synthase is essential for survival and virulence in fungi, while absent in mammals, thus representing a potential target for antifungal treatments. Aureobasidin A (AbA), a natural cyclic peptide, displays antifungal activity and inhibits IPC synthase, but the precise molecular mechanism remains unclear. Here, we present the cryo-EM structure of the Saccharomyces cerevisiae IPC synthase, composed of catalytic subunit Aur1 and regulatory subunit Kei1, in its AbA-bound state. The complex is resolved as a dimer of Aur1-Kei1 heterodimers, with Aur1 mediating homodimerization. AbA occupies a predominantly hydrophobic pocket in the catalytic core domain of each Aur1 subunit, blocking the entry of both substrates. Mutations conferring AbA resistance cluster near the AbA-binding site, thus interfering with AbA binding. Our study lays a foundation for the development of therapeutic drugs targeting fungal IPC synthase.
© 2025. The Author(s).
MeSH terms
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Antifungal Agents* / pharmacology
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Binding Sites
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Catalytic Domain
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Cryoelectron Microscopy
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Depsipeptides* / chemistry
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Depsipeptides* / metabolism
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Depsipeptides* / pharmacology
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Drug Resistance, Fungal* / genetics
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Hexosyltransferases* / antagonists & inhibitors
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Hexosyltransferases* / chemistry
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Hexosyltransferases* / genetics
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Hexosyltransferases* / metabolism
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Hexosyltransferases* / ultrastructure
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Models, Molecular
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Mutation
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Protein Multimerization
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Saccharomyces cerevisiae Proteins* / antagonists & inhibitors
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Saccharomyces cerevisiae Proteins* / chemistry
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Saccharomyces cerevisiae Proteins* / genetics
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Saccharomyces cerevisiae Proteins* / metabolism
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Saccharomyces cerevisiae Proteins* / ultrastructure
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Saccharomyces cerevisiae* / drug effects
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Saccharomyces cerevisiae* / enzymology
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Saccharomyces cerevisiae* / genetics
Substances
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Depsipeptides
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aureobasidin A
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Hexosyltransferases
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Antifungal Agents
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phosphatidylinositol-ceramide phosphoinositol transferase
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Saccharomyces cerevisiae Proteins