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Interfacial Molecular-level Structures of Polymers and Biomacromolecules Revealed via Sum Frequency Generation Vibrational Spectroscopy
Published on: August 13, 2019
Differentiating Two Adsorption Modes of Membrane-Bound Antimicrobial Peptides via Sum Frequency Generation
Chu Wang1, Chenxi Hou1, Jiayou Pu1
1State Key Laboratory of Digital Medical Engineering, School of Biological Science and Medical Engineering, Southeast University, Nanjing 210096, China.
Abstract:
Multidrug-resistant (MDR) pathogens have been a growing threat to human health over the years. Antimicrobial peptides (AMPs) with broad-spectrum antibiotic activity, as a promising therapeutic candidate, have shown tremendous capability against MDR pathogens. To acquire novel AMPs with better efficacy, we should dig into the antimicrobial mechanism by which AMPs perform their functions. In this study, the interaction processes between three representative AMPs (maculatin 1.1-G15, cupiennin 1a, and aurein 1.2) and the model membrane dDPPG/DPPG bilayer were investigated via sum frequency generation (SFG) vibrational spectroscopy. Two interaction modes for the membrane-bound AMPs were differentiated, i.e., the loosely adsorbed one and the tightly adsorbed one. In the loosely adsorbed mode, AMPs are bound to the bilayer mainly by the electrostatic attraction between the positively charged residues of AMPs and the negatively charged head groups of the lipids. After the charged AMPs and lipids were neutralized by the counter ions, the desorption of AMPs from the membrane lipids happened, as evidenced by the disappearance of the SFG signals from membrane-bound AMPs. While in the tightly adsorbed mode, besides the charged attraction, AMPs are additionally inserted into the membrane lipids via the hydrophobic interaction. Even when the electrostatic attraction was neutralized by the counter ions, the hydrophobic interaction still led to the firm adsorption of AMPs onto the already-neutralized bilayer lipids, as evidenced by the presence of clear SFG signals from membrane-bound AMPs. We thus established a feasible protocol to expand the application of SFG, namely classifying the adsorption modes of AMPs. Such knowledge will surely promote the development and application of AMPs with high efficacy.
Insights
Antimicrobial peptides (AMPs) interact with bacterial membranes through electrostatic or hydrophobic forces. Understanding these interactions, using sum frequency generation (SFG) spectroscopy, helps develop new peptide antibiotics against drug-resistant pathogens.
Area of Science:
- Biophysics
- Biochemistry
- Materials Science
Background:
- Multidrug-resistant (MDR) pathogens pose a significant global health threat.
- Antimicrobial peptides (AMPs) show promise as therapeutics against MDR pathogens due to their broad-spectrum activity.
- Elucidating the precise antimicrobial mechanisms of AMPs is crucial for developing more effective treatments.
Purpose of the Study:
- To investigate the interaction mechanisms between representative AMPs and model lipid bilayers.
- To differentiate between various AMP adsorption modes on membranes.
- To establish a method for classifying AMP-membrane interactions using SFG spectroscopy.
Main Methods:
- Utilized sum frequency generation (SFG) vibrational spectroscopy to study AMP-membrane interactions.
- Investigated three specific AMPs (maculatin 1.1-G15, cupiennin 1a, and aurein 1.2) with a dDPPG/DPPG lipid bilayer model.
- Analyzed AMP adsorption based on electrostatic and hydrophobic interactions, with and without counter-ion neutralization.
Main Results:
- Identified two distinct AMP adsorption modes: loosely adsorbed (electrostatic) and tightly adsorbed (electrostatic + hydrophobic).
- Loosely adsorbed AMPs desorbed upon neutralization of electrostatic charges, indicated by loss of SFG signals.
- Tightly adsorbed AMPs remained bound even after charge neutralization due to hydrophobic interactions, confirmed by persistent SFG signals.
Conclusions:
- Established a reliable protocol using SFG spectroscopy to classify AMP adsorption modes on lipid bilayers.
- Demonstrated that hydrophobic interactions are key for stable AMP adsorption, even after electrostatic forces are screened.
- This knowledge facilitates the rational design and development of highly effective AMP-based antimicrobial agents.
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