Antimicrobial efficacy of platinum-doped silver nanoparticles.

Wongkamhaeng, Kan; Wang, Junnan; Banas, Jeffrey A; Dawson, Deborah V; Holloway, Julie A; Haes, Amanda J; Denry, Isabelle · J Biomed Mater Res B Appl Biomater · 2020

basic_science · Level V

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Abstract

Silver nanoparticles (AgNPs) have been proposed to combat oral infection due to their efficient ionic silver (Ag<sup>+</sup> ) release. However, concentrations required for antimicrobial efficacy may not be therapeutically viable. In this work, platinum-doped silver nanoparticles (Pt-AgNPs) were explored to evaluate their potential for enhanced Ag<sup>+</sup> release, which could lead to enhanced antimicrobial efficacy against S. aureus, P. aeruginosa, and E. coli. AgNPs doped with 0.5, 1, and 2 mol% platinum (Pt<sub>0.5</sub> -AgNPs, Pt<sub>1</sub> -AgNPs, and Pt<sub>2</sub> -AgNPs) were synthesized by a chemical reduction method. Transmission electron microscopy revealed mixed morphologies of spherical, oval, and ribbon-like nanostructures. Surface-enhanced Raman scattering revealed that the surface of Pt-AgNPs was covered with up to 93% Pt. The amount of Ag<sup>+</sup> released increased 16.3-fold for Pt<sub>2</sub> -AgNPs, compared to AgNPs. The initial lag phase in bacterial growth curve was prolonged for Pt-AgNPs. This is consistent with a Ag<sup>+</sup> release profile that exhibited an initial burst followed by sustained release. Doping AgNPs with platinum significantly increased the antimicrobial efficacy against all species. Pt<sub>2</sub> -AgNPs exhibited the lowest minimum inhibitory concentrations, followed by Pt<sub>1</sub> -AgNPs, Pt<sub>0.5</sub> -AgNPs, and AgNPs, respectively. Doping AgNPs with a small amount of platinum promoted the release of Ag<sup>+</sup> , based on the sacrificial anodic effect, and subsequently enhanced their antimicrobial efficacy.

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