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Preparation of Light-responsive Membranes by a Combined Surface Grafting and Postmodification Process
Published on: March 21, 2014
A semisynthetic 5-n-alkylresorcinol derivative and its effect upon biomembrane properties
Maria Stasiuk1, Dominika Bartosiewicz, Jerzy Gubernator
1Department of Lipids and Liposomes, Faculty of Biotechnology, University of Wroclaw, Wroclaw, Poland. stasiuk@ibmb.uni.wroc.pl
Abstract:
MSAR (1-sulfate-3-myristoyl-5-pentadecylbenzene) is a semisynthetic derivative of 5-n-pentadecylresorcinol (C15:0). MSAR exhibits hemolytic activity against sheep erythrocytes with a EH50 value of (35 +/- 1.7) microM. At low concentrations MSAR also exhibits the ability to protect cells against their hypoosmotic lysis. This protective effect is significant as, at 0.1 microM of MSAR, the extent of osmotically induced cell lysis is reduced by approx. 20%. It was demonstrated that the 9-anthroyloxystearic acid signal was most intensively quenched by MSAR molecules, suggesting a relatively deep location of these molecules within the lipid bilayer. MSAR causes an increase of the fluorescence of the membrane potential sensitive probe. This indicates an alteration of the surface charge and a decrease of the local pH value at the membrane surface. At low bilayer content (1-4 mol%) this compound causes a significant increase of the phospholipid bilayer fluidity (both under and above the main phase transition temperature) of dipalmitoylphosphatidylcholine (DPPC) liposomes. At this low content MSAR slightly decreases the main phase transition temperature (T(c)) value. The effects induced in the phospholipid bilayer by higher contents of MSAR molecules (5-10 mol%) make it impossible to determine the T(c) value and to evaluate changes of the membrane fluidity by using pyrene-labeled lipid. MSAR also causes a decrease of the activity of membrane-bound enzymes - red blood cell acetylcholinesterase (AChE) and phospholipase A2 (PLA2). MSAR decreases the AChE activity by 40% at 100 microM. The presence of MSAR in the liposomal membrane induces a complete abolishment of the lag time of the PLA2 activity, indicating that these molecules induce the formation of packing defects in the bilayer which may result from imperfect mixing of phospholipids.
Insights
MSAR, a synthetic lipid derivative, shows hemolytic activity and protects cells from lysis. It alters cell membrane properties, increasing fluidity and affecting enzyme activity, indicating potential membrane disruption.
Area of Science:
- Biochemistry
- Membrane Biophysics
- Pharmacology
Background:
- MSAR (1-sulfate-3-myristoyl-5-pentadecylbenzene) is a semisynthetic derivative of 5-n-pentadecylresorcinol.
- Understanding lipid-protein interactions is crucial for drug development.
Purpose of the Study:
- To investigate the biophysical and biochemical effects of MSAR on cell membranes.
- To determine the hemolytic activity and membrane-protective properties of MSAR.
Main Methods:
- Hemolysis assay using sheep erythrocytes.
- Fluorescence quenching and membrane potential probe studies.
- Differential scanning calorimetry and fluorescence spectroscopy on DPPC liposomes.
- Enzyme activity assays for AChE and PLA2.
Main Results:
- MSAR exhibits hemolytic activity (EH50 = 35 +/- 1.7 microM).
- Low MSAR concentrations protect erythrocytes from hypoosmotic lysis.
- MSAR localizes deep within the lipid bilayer, alters membrane surface charge, and decreases local pH.
- MSAR increases phospholipid bilayer fluidity and decreases the phase transition temperature at low concentrations.
- Higher MSAR concentrations disrupt bilayer structure, inhibiting membrane-bound enzymes like AChE and PLA2.
Conclusions:
- MSAR possesses dose-dependent hemolytic and cytoprotective effects.
- MSAR significantly perturbs lipid bilayer structure and dynamics.
- MSAR's interaction with membranes affects membrane potential, fluidity, and enzyme function, suggesting potential therapeutic or toxicological applications.
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