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.

Biomacromolecules
|July 7, 2018
PubMed

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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