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Wessig, P.

Publications and source records attributed to Wessig, P..

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Ergosterol mediates aggregation of natamycin in the yeast plasma membrane

Polyene macrolides are antifungal substances, which interact with cells in a sterol-dependent manner. While being widely used, their mode of action is poorly understood. Here, we employ ultraviolet-sensitive (UV) microscopy to show that the antifungal polyene natamycin binds to the yeast plasma membrane (PM) and causes permeation of propidium iodide into cells. Right before membrane permeability becomes compromised, we observed clustering of natamycin in the PM that was independent of PM protein domains. Aggregation of natamycin was paralleled by cell deformation and membrane blebbing as revealed by soft X-ray microscopy. Substituting ergosterol for cholesterol decreased natamycin binding and resulted in reduced clustering of natamycin in the PM. Blocking of ergosterol synthesis necessitates sterol import via the ABC transporters Aus1/Pdr11 to ensure natamycin binding. Quantitative imaging of dehydroergosterol (DHE) and cholestatrienol (CTL), two analogs of ergosterol and cholesterol, respectively, revealed a largely homogeneous lateral sterol distribution in the PM, ruling out that natamycin binds to pre-assembled sterol domains. Depletion of sphingolipids using myriocin increased natamycin binding to yeast cells, likely by increasing the ergosterol fraction in the outer PM leaflet. We conclude that ergosterol-specific aggregation of natamycin in the yeast PM underlies its antifungal activity, which can be synergistically enhanced by inhibitors of sphingolipid synthesis. SignificanceErgosterol is the major sterol in the membranes of fungi and a major target for antifungal treatments. Polyene macrolides, such as natamycin, are known to target ergosterol but the underlying mechanisms for their preference for this yeast sterol compared to mammalian cholesterol is not understood. This study shows that natamycin forms aggregates when associated with yeast S. cerevisiae in an ergosterol-dependent manner. Cholesterol can only partially substitute for ergosterol with respect to natamycin binding and aggregation. Membrane-associated aggregation of natamycin is not the result of pre-formed sterol domains in the cell membrane, as we show by direct visualization of minimally modified ergosterol and cholesterol analogs. Inhibiting sphingolipid synthesis increased membrane association and antifungal activity of natamycin, suggesting that targeting sphingolipids in combination with polyene macrolides could lead to novel drug treatment approaches against fungal infections.

biophysics↗

Synthesis and characterization of novel intrinsically fluorescent analogs of cholesterol with improved photophysical properties.

Live-cell imaging of cholesterol trafficking depends on suitable cholesterol analogs. However, existing fluorescent analogs of cholesterol either show very different physico-chemical properties compared to cholesterol or demand excitation in the ultraviolet spectral region. We present novel intrinsically fluorescent sterols containing four conjugated double bonds in the ring system and either a hydroxy or a keto group in the C3 position. Synthesis of these probes involves dehydrogenation of 7-dehydrocholesterol using mercury(II) acetate, Swern oxidation/dehydrogenation, and stereoselective Luche reduction. Molecular dynamics simulations and nuclear magnetic resonance spectroscopy reveal that the analog with a 3-hydroxy-group like cholesterol can condense fatty acyl chains and form hydrogen bonds to water molecules at the bilayer interface. The emission of both probes is red-shifted by 80-120 nm compared to the widely used sterol analogs dehydroergosterol or cholestatrienol. This allows for their imaging on conventional microscopes, as we here show in giant unilamellar vesicles. These experiments reveal a preferred partitioning of both sterol probes into the biologically relevant liquid-ordered phase. In conclusion, we present a synthesis strategy leading to novel intrinsically fluorescent sterol probes with close resemblance of cholesterol. Their improved photophysical properties will allow for live-cell imaging of sterol transport in the future.

biophysics↗