4.6 Article

Evaluating the antimicrobial activity and cytotoxicity of polydopamine capped silver and silver/polydopamine core-shell nanocomposites

Journal

ARABIAN JOURNAL OF CHEMISTRY
Volume 15, Issue 6, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.arabjc.2022.103798

Keywords

Silver nanoparticles; Polydopamine; Nanocomposite; E; coli; S; aureus

Funding

  1. University of Wit-watersrand School of Chemistry
  2. University of the Witwa-tersrand Postgraduate Merit Award
  3. National Research Foundation of South Africa

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Fabrication of bioactive nanomaterials with improved stability and low toxicity is of interest. Ag-PDA and Ag@PDA nanocomposites were successfully prepared to address the issue of agglomeration, and showed excellent biocompatibility and antimicrobial activity.
Fabrication of bioactive nanomaterials with improved stability and low toxicity towards healthy mammalian cells have recently been a topic of interest. Bioactive metal nanomaterials such as silver nanoparticles (AgNPs) tend to lose their stability with time and become toxic to some extent, limiting their biological applications. AgNPs were separately encapsulated and loaded on the surface of a biocompatible polydopamine (PDA) to produce Ag-PDA and Ag@PDA nanocomposites to unravel the issue of agglomeration. PDA was coated through the self-polymerization of dopamine on the surface of AgNPs to produce Ag-PDA core-shells nanocomposites. For Ag@PDA, PDA spheres were first designed through self-polymerization of dopamine followed by in situ reduction of silver nitrate (AgNO3) without any reductant. AgNPs sizes were controlled by varying the concentration of AgNO3. The TEM micrograms showed monodispersed PDA spheres with an average diameter of 238 nm for Ag-PDA and Ag@PDA nanocomposites. Compared to Ag@PDA, Ag-PDA nanocomposites have shown insignificant toxicity towards human embryonic kidney (HEK-293T) and human dermal fibroblasts (HDF) cells with cell viability of over 95% at concentration of 250 mg/mL. A excellent antimicrobial activity of the nanocomposites was observed; with Ag@PDA possessing bactericidal effect at concentration as low as 12.5 mg/mL. AgPDA on the other hand were only found to be bacteriostatic against gram-positive and gram (c) 2022 The Authors. Published by Elsevier B.V. on behalf of King Saud University. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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