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Interaction of gentamicin and spermine with bilayer membranes containing negatively charged phospholipids
Abstract:
We measured the electrophoretic mobility of multilamellar phospholipid vesicles, the 31P NMR spectra of both sonicated and multilamellar vesicles, and the conductance of planar bilayer membranes to study the binding of spermine and gentamicin to membranes. Spermine and gentamicin do not bind significantly to the zwitterionic lipid phosphatidylcholine. We measured the concentrations of gentamicin and spermine that reverse the charge on vesicles formed from a mixture of phosphatidylcholine and either phosphatidylserine or phosphatidylinositol. From these measurements, we determined that the intrinsic association constants of the cations with these negative lipids are all about 10 M-1. This value is orders of magnitude lower than the apparent binding constants reported in the literature by other groups because the negative electrostatic surface potential of the membranes and the resultant accumulation of these cations in the aqueous diffuse double layer adjacent to the membranes have not been explicitly considered in previous studies. Our main conclusion is that the Gouy-Chapman-Stern theory of the aqueous diffuse double layer can describe surprisingly well the interaction of gentamicin and spermine with bilayer membranes formed in a 0.1 M NaCl solution if the negative phospholipids constitute less than 50% of the membrane. Thus, the theory should be useful for describing the interactions of these cations with the bilayer component of biological membranes, which typically contain less than 50% negative lipids. For example, our results support the suggestion of Sastrasinh et al. [Sastrasinh, M., Krauss, T. C., Weinberg, J. M., & Humes, H. D. (1982) J. Pharmacol. Exp. Ther. 222, 350-358] that phosphatidylinositol is the major binding site for gentamicin in renal brush border membranes.
Insights
Spermine and gentamicin bind weakly to membranes containing negative phospholipids, with binding constants around 10 M-1. The Gouy-Chapman-Stern theory accurately models these interactions in biological membranes.
Area of Science:
- Membrane Biophysics
- Physical Chemistry
- Pharmacology
Background:
- Understanding cation-membrane interactions is crucial for drug delivery and toxicity.
- Previous studies often overestimated binding due to unconsidered electrostatic effects.
Purpose of the Study:
- To quantify the binding of spermine and gentamicin to phospholipid membranes.
- To investigate the role of electrostatic surface potential in cation-membrane interactions.
- To evaluate the applicability of the Gouy-Chapman-Stern theory.
Main Methods:
- Electrophoretic mobility measurements of phospholipid vesicles.
- 31P NMR spectroscopy of sonicated and multilamellar vesicles.
- Conductance measurements of planar bilayer membranes.
Main Results:
- Spermine and gentamicin show minimal binding to phosphatidylcholine (zwitterionic lipid).
- Intrinsic association constants for negative lipids (phosphatidylserine, phosphatidylinositol) are approximately 10 M-1.
- Gouy-Chapman-Stern theory accurately predicts binding when negative lipids are <50% of the membrane.
Conclusions:
- Electrostatic surface potential significantly influences apparent cation binding constants.
- The Gouy-Chapman-Stern theory provides a robust framework for understanding cation interactions with biological membranes.
- Phosphatidylinositol is a likely primary binding site for gentamicin in renal membranes.