Revisiting the Interaction of Melittin with Phospholipid Bilayers: The Effects of Concentration and Ionic Strength
Thiru Sabapathy1, Evelyne Deplazes1,2, Ricardo L Mancera1
1School of Pharmacy and Biomedical Sciences, Curtin Health Innovation Research Institute, Curtin University, GPO Box U1987, Perth, WA 6845, Australia.
Abstract:
Melittin is an anti-microbial peptide (AMP) and one of the most studied membrane-disrupting peptides. There is, however, a lack of accurate measurements of the concentration-dependent kinetics and affinity of binding of melittin to phospholipid membranes. In this study, we used surface plasmon resonance spectroscopy to determine the concentration-dependent effect on the binding of melittin to 1-palmitoyl-2-oleoyl-glycero-3-phosphocholine (POPC) bilayers in vesicles. Three concentration ranges were considered, and when combined, covered two orders of magnitudes (0.04 µM to 8 µM), corresponding to concentrations relevant to the membrane-disrupting and anti-microbial activities of melittin. Binding kinetics data were analysed using a 1:1 Langmuir-binding model and a two-state reaction model. Using in-depth quantitative analysis, we characterised the effect of peptide concentration, the addition of NaCl at physiological ionic strength and the choice of kinetic binding model on the reliability of the calculated kinetics and affinity of binding parameters. The apparent binding affinity of melittin for POPC bilayers was observed to decrease with increasing peptide/lipid (P/L) ratio, primarily due to the marked decrease in the association rate. At all concentration ranges, the two-state reaction model provided a better fit to the data and, thus, a more reliable estimate of binding affinity. Addition of NaCl significantly reduced the signal response during the association phase; however, no substantial effect on the binding affinity of melittin to the POPC bilayers was observed. These findings based on POPC bilayers could have important implications for our understanding of the mechanism of action of melittin on more complex model cell membranes of higher physiological relevance.
Insights
Melittin binding to membranes weakens as concentration increases, with a two-state model offering more reliable affinity measurements. This study quanties melittin-membrane interactions, crucial for understanding its antimicrobial activity.
Area of Science:
- Biochemistry
- Biophysics
- Membrane Biology
Background:
- Melittin, a well-studied antimicrobial peptide (AMP), disrupts cell membranes.
- Accurate measurements of melittin's binding kinetics and affinity to phospholipid membranes are lacking.
- Understanding these interactions is key to elucidating melittin's mechanism of action.
Purpose of the Study:
- To quantify the concentration-dependent binding kinetics and affinity of melittin to phospholipid bilayers.
- To evaluate the influence of peptide concentration, ionic strength, and binding models on these parameters.
- To provide reliable binding data relevant to melittin's membrane-disrupting and antimicrobial activities.
Main Methods:
- Surface plasmon resonance (SPR) spectroscopy was employed to study melittin binding.
- 1-palmitoyl-2-oleoyl-glycero-3-phosphocholine (POPC) bilayers in vesicles were used as the model membrane.
- Binding kinetics were analyzed using 1:1 Langmuir and two-state reaction models across a range of melittin concentrations (0.04 µM to 8 µM).
Main Results:
- Apparent binding affinity decreased with increasing peptide/lipid ratio, mainly due to reduced association rates.
- The two-state reaction model provided a better fit and more reliable affinity estimates compared to the 1:1 Langmuir model.
- Addition of NaCl at physiological ionic strength reduced SPR signal response but did not significantly alter binding affinity.
Conclusions:
- Melittin's binding affinity to POPC bilayers is concentration-dependent and influenced by the chosen kinetic model.
- The two-state model is superior for accurately characterizing melittin-membrane interactions.
- These findings enhance our understanding of melittin's mechanism of action on cell membranes.
Related Concept Videos
Membrane Fluidity
Mosaic nature of the membrane
The mosaic characteristic of the membrane helps the plasma membrane remain fluid. The integral proteins and lipids exist as separate but loosely-attached molecules in the membrane. The membrane is...
Membrane Fluidity
Asymmetric Lipid Bilayer
Detergent Purification of Membrane Proteins
Ionic Strength: Effects on Chemical Equilibria
In this solution, the primary...


