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Updated: Dec 28, 2025

Gramicidin-based Fluorescence Assay; for Determining Small Molecules Potential for Modifying Lipid Bilayer Properties
Published on: October 13, 2010
Moxifloxacin interacts with lipid bilayer, causing dramatic changes in its structure and phase transitions
Irina M Le-Deygen1, Anna A Skuredina1, Anastasia S Safronova1
1Lomonosov MSU, Faculty of Chemistry, Chemical Enzymology Department, 119991, Moscow, Leninskie Gory, 1, 3, Russia.
Abstract:
Most drugs besides their intended activity, express undesired side effects, including those with the engagement of cell membrane. Previously, such undesired nonspecific effects on the membrane have been shown for a number of widely used nonsteroidal anti-inflammatory drugs. In this paper, we study the mechanism of interaction between moxifloxacin (Mox), antibacterial drug of broad specificity, with lipid bilayer of the liposomes of various compositions as a model of cell membrane using a combination of spectroscopy methods, including ATR-FTIR spectroscopy, circular dichroism, UV and fluorescence spectroscopy. The fine structure of the moxifloxacin-liposome complex, localization of the drug in bilayer and the main sites of Mox interaction with lipid membrane were determined. Lipid composition of the liposome plays a key role in the interaction with moxifloxacin, drastically affecting the loading efficiency, strength and character of drug binding, lipid phase segregation and phase transition parameters. In case of anionic liposomes composed of dipalmitoylphosphatidylcholine (DPPC) and cardiolipin (CL2-) the electrostatic interaction of negatively charged nitrogen in heterocycle moiety of moxifloxacin with cardiolipin phosphate groups is a crucial factor for stable complex formation. The study of moxifloxacin-liposome complex behavior at phase transition in bilayer by DSC method revealed that in DPPC/CL2- liposomes system two microphases with different content of CL2- coexist and Mox interacts with both of these microphases resulting in the formation of two types of complexes with different structure and phase transition temperature. This binding stabilized the gel-state of the lipid bilayer with increasing the phase transition temperature Tm up to 3-5 °C. A different situation is observed for neutral DPPC liposomes: drug interaction with bilayer results in defects formation and a fluidization effect in lipid bilayer, resulted to decrease the Tm value by 2-4 °C. Moxifloxacin is not firmly binding in the membrane of DPPC and drug releases rapidly.
Insights
Moxifloxacin (Mox) interaction with lipid bilayers depends on liposome composition. Anionic liposomes stabilize the membrane, while neutral liposomes lead to defects and rapid drug release.
Area of Science:
- Biophysics
- Pharmacology
- Materials Science
Background:
- Nonsteroidal anti-inflammatory drugs can cause undesired side effects by interacting with cell membranes.
- Understanding drug-membrane interactions is crucial for predicting drug behavior and side effects.
Purpose of the Study:
- To investigate the mechanism of moxifloxacin (Mox) interaction with lipid bilayers as a cell membrane model.
- To determine how liposome composition influences Mox binding, localization, and effects on membrane properties.
Main Methods:
- Attenuated total reflection-Fourier transform infrared (ATR-FTIR) spectroscopy
- Circular dichroism (CD) spectroscopy
- UV-Vis spectroscopy
- Fluorescence spectroscopy
- Differential scanning calorimetry (DSC)
Main Results:
- Mox interaction strength and character are significantly affected by lipid composition.
- In anionic liposomes (DPPC/CL2-), electrostatic interactions promote stable complex formation, stabilizing the gel state and increasing phase transition temperature (Tm) by 3-5 °C.
- In neutral liposomes (DPPC), Mox causes defects, fluidizes the bilayer, and decreases Tm by 2-4 °C, leading to rapid drug release.
Conclusions:
- Lipid composition dictates moxifloxacin's interaction with cell membrane models.
- Anionic lipids enhance Mox binding and membrane stability, whereas neutral lipids promote drug release.
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