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Updated: Aug 28, 2025

Gramicidin-based Fluorescence Assay; for Determining Small Molecules Potential for Modifying Lipid Bilayer Properties
Published on: October 13, 2010
Amphotericin B release rate is the link between drug status in the liposomal bilayer and toxicity
Yuri Svirkin1, Jaeweon Lee1, Richard Marx1
1Landrau Scientific Innovations, Leominster, MA, United States of America.
Abstract:
Amphotericin B (AmB) is an amphiphilic drug commonly formulated in liposomes and administered intravenously to treat systemic fungal infections. Recent studies on the liposomal drug product have shed light on the AmB aggregation status in the bilayer, which heat treatment (curing) modifies. Although toxicity was found related to aggregation status - loose aggregates significantly more toxic than tight aggregates - the precise mechanism linking aggregation and toxicity was not well understood. This study directly measured drug release rate from various AmB liposomal preparations made with modified curing protocols to evaluate correlations among drug aggregation state, drug release, and in vitro toxicity. UV-Vis spectroscopy of these products detected unique curing-induced changes in the UV spectral features: a ∼25 nm blue-shift of the main absorption peak (λmax) in aqueous buffer and a decrease in the OD346/OD322 ratio upon thermal curing, reflecting tighter aggregation. In vitro release testing (IVRT) data showed, by applying and fitting first-order release kinetic models for one or two pools, that curing impacts two significant changes: a 3-5-fold drop in the overall drug release rate and a ten-fold decrease in the ratio between the loosely aggregated and the tightly aggregated, more thermodynamically stable drug pool. The kinetic data thus corroborated the trend independently deduced from the UV-Vis spectral data. The in vitro toxicity assay indicated a decreased toxicity with curing, as shown by the significantly increased concentration, causing half-maximal potassium release (TC50). The data suggest that the release of AmB requires dissociation of the tight complexes within the bilayer and that the reduced toxicity relates to this slower rate of dissociation. This study demonstrates the relationship between AmB aggregation status within the lipid bilayer and drug release (directly measured rate constants), providing a mechanistic link between aggregation status and in vitro toxicity in the liposomal formulations.
Insights
Heat treatment of liposomal Amphotericin B (AmB) reduces drug release and toxicity by promoting tighter AmB aggregation. This study links AmB aggregation state to drug release kinetics and in vitro toxicity.
Area of Science:
- Pharmacology
- Materials Science
- Biophysics
Background:
- Amphotericin B (AmB) liposomes are crucial for treating fungal infections.
- AmB aggregation in liposomes affects toxicity, but the mechanism is unclear.
- Heat treatment (curing) alters AmB aggregation state.
Purpose of the Study:
- To investigate the relationship between AmB aggregation, drug release rate, and in vitro toxicity.
- To elucidate the mechanism linking AmB aggregation to liposome toxicity.
Main Methods:
- UV-Vis spectroscopy to monitor AmB aggregation.
- In vitro release testing (IVRT) with kinetic modeling.
- In vitro toxicity assays measuring potassium release.
Main Results:
- Curing induced spectral shifts (blue-shift, decreased OD346/OD322 ratio) indicating tighter AmB aggregation.
- Curing reduced AmB release rate 3-5 fold and the loose-to-tight aggregate ratio 10 fold.
- Toxicity (TC50) significantly decreased with curing, correlating with slower drug release.
Conclusions:
- AmB release from liposomes requires dissociation of tightly aggregated complexes.
- Reduced toxicity is mechanistically linked to slower AmB dissociation rates.
- This study establishes a direct correlation between AmB aggregation, release kinetics, and liposomal formulation toxicity.
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