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Published on: August 11, 2018
Peptide-Loaded Microgels as Antimicrobial and Anti-Inflammatory Surface Coatings
Lina Nyström, Adam A Strömstedt, Artur Schmidtchen1
1Division of Dermatology and Venereology, Department of Clinical Sciences , Lund University , SE-22184 Lund , Sweden.
Abstract:
Here we report on covalently immobilized poly(ethyl acrylate- co-methacrylic acid) microgels loaded with the host defense peptide KYE28 (KYEITTIHNLFRKLTHRLFRRNFGYTLR), which is derived from human heparin cofactor II, as well as its poly(ethylene glycol)-conjugated (PEGylated) version, KYE28PEG. Peptide loading and release, as well as the consequences of these processes on the microgel and peptide properties, were studied by in situ ellipsometry, confocal microscopy, zeta potential measurements, and circular dichroism spectroscopy. The results show that the microgel-peptide interactions are electrostatically dominated, thus promoted at higher microgel charge density, while PEGylation suppresses peptide binding. PEGylation also enhances the α-helix induction observed for KYE28 upon microgel incorporation. Additionally, peptide release is facilitated at physiological salt concentration, particularly so for KYE28PEG, which illustrates the importance of electrostatic interactions. In vitro studies on Escherichia coli show that the microgel-modified surfaces display potent antifouling properties in both the absence and presence of the incorporated peptide. While contact killing dominates at low ionic strength for the peptide-loaded microgels, released peptides also provide antimicrobial activity in bulk at a high ionic strength. Additionally, KYE28- and KYE28PEG-loaded microgels display anti-inflammatory effects on human monocytes. Taken together, these results not only show that surface-bound microgels offer an interesting approach for local drug delivery of host defense peptides but also illustrate the need to achieve high surface loads of peptides for efficient biological effects.
Insights
Immobilized microgels loaded with host defense peptides show potent antimicrobial and anti-inflammatory effects. PEGylation enhances peptide structure and release, offering a promising approach for localized drug delivery and surface modification.
Area of Science:
- Biomaterials Science
- Surface Chemistry
- Drug Delivery
Background:
- Host defense peptides (HDPs) like KYE28 exhibit antimicrobial and anti-inflammatory properties.
- Covalently immobilized microgels offer a platform for localized peptide delivery.
- Poly(ethylene glycol) (PEG) conjugation can modify peptide behavior and interactions.
Purpose of the Study:
- To investigate the loading, release, and biological activity of HDPs (KYE28 and PEGylated KYE28) within poly(ethyl acrylate-co-methacrylic acid) microgels.
- To evaluate the impact of microgel immobilization and PEGylation on peptide properties and interactions.
- To assess the antifouling, antimicrobial, and anti-inflammatory efficacy of peptide-loaded microgels.
Main Methods:
- In situ ellipsometry, confocal microscopy, zeta potential measurements, and circular dichroism spectroscopy.
- In vitro studies using Escherichia coli and human monocytes.
- Fabrication of covalently immobilized poly(ethyl acrylate-co-methacrylic acid) microgels.
Main Results:
- Microgel-peptide interactions are dominated by electrostatics, influenced by microgel charge density.
- PEGylation of KYE28 suppressed binding but enhanced α-helix induction and facilitated release.
- Microgel-modified surfaces exhibited potent antifouling properties; peptide release provided antimicrobial activity and anti-inflammatory effects.
Conclusions:
- Surface-bound microgels are a viable strategy for local drug delivery of HDPs.
- Optimizing surface peptide loading is crucial for achieving efficient biological effects.
- Electrostatic interactions and PEGylation significantly influence peptide loading, release, and efficacy.
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