Antimicrobial peptide-modified silver nanoparticles for enhancing the antibacterial efficacy

Wenxi Li1, Yongchun Li2, Pengchao Sun3

  • 1Zhengzhou Traditional Chinese Hospital of Orthopaedics Zhengzhou Henan 450004 PR China.

RSC Advances
|May 6, 2022
PubMed

Insights

Multifunctional peptide-coated silver nanoparticles (MFP@AgNPs) combat antibiotic-resistant bacteria. These novel nanoparticles show enhanced efficacy against multidrug-resistant Acinetobacter baumannii both in vitro and in vivo, offering a promising solution to public health threats.

Area of Science:

  • Biomaterials Science
  • Nanotechnology
  • Infectious Diseases

Background:

  • Antibiotic-resistant bacteria pose a significant global health risk.
  • Development of novel antimicrobial strategies is crucial to combat rising resistance.
  • Silver nanoparticles (AgNPs) possess inherent antimicrobial properties but require functionalization for enhanced efficacy and targeted delivery.

Purpose of the Study:

  • To develop and characterize multifunctional peptide (MFP)-coated silver nanoparticles (MFP@AgNPs) for enhanced antibacterial applications.
  • To evaluate the in vitro and in vivo antibacterial efficacy of MFP@AgNPs against Gram-positive and Gram-negative bacteria, particularly multidrug-resistant Acinetobacter baumannii (MDR-AB).
  • To assess the potential of MFP@AgNPs as a safer and more effective alternative to bare AgNPs.

Main Methods:

  • Synthesis and characterization of MFP@AgNPs using UV-vis spectrophotometry, zeta potential analysis, CD spectroscopy, ATR-FTIR, and TEM.
  • Determination of Minimum Inhibitory Concentration (MIC) and Minimum Bactericidal Concentration (MBC) against various bacterial strains.
  • In vitro evaluation of antibacterial activity, including cell membrane damage assessment via SEM.
  • In vivo efficacy studies using a mouse model infected with MDR-AB.

Main Results:

  • MFP@AgNPs were successfully synthesized and characterized, demonstrating stability and specific peptide adsorption.
  • MFP@AgNPs exhibited broad-spectrum antibacterial activity against both Gram-positive and Gram-negative bacteria.
  • MFP@AgNPs showed significantly enhanced killing of MDR-AB compared to bare AgNPs, with faster action and improved efficiency.
  • SEM analysis indicated that MFP@AgNPs-1 induce bacterial cell disruption through membrane damage.
  • In vivo studies confirmed the superior antibacterial performance of MFP@AgNPs-1 against MDR-AB infections.
  • MFP@AgNPs demonstrated reduced cytotoxicity compared to bare AgNPs.

Conclusions:

  • MFP@AgNPs represent a promising multifunctional nanomaterial for combating antibiotic-resistant bacteria.
  • The developed MFP@AgNPs enhance antibacterial activity and reduce AgNP cytotoxicity, offering a potential therapeutic strategy against MDR-AB.
  • This study provides a foundation for the clinical translation of peptide-functionalized nanoparticles in infectious disease treatment.