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  4. Star Polymers as a Reducing Agent of Silver Salt and a Carrier for Silver Nanoparticles
 
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Star Polymers as a Reducing Agent of Silver Salt and a Carrier for Silver Nanoparticles

Type
Journal article
Language
English
Date issued
2025
Author
Szcześniak, Katarzyna
Przesławski, Grzegorz
Kotecki, Jakub
Andrzejewska, Weronika
Fiedorowicz, Katarzyna
Woźniak-Budych, Marta
Jarzębski, Maciej 
Gajewski, Piotr [PP]
Marcinkowska, Agnieszka
Faculty
Wydział Nauk o Żywności i Żywieniu
Journal
Materials
ISSN
1996-1944
DOI
10.3390/ma18133009
Web address
https://www.mdpi.com/1996-1944/18/13/3009
Volume
18
Number
13
Pages from-to
art. 3009
Abstract (EN)
Star polymers-macromolecules featuring multiple arms radiating from a central core—offer unique potential for biomedical applications due to their tunable architecture, multifunctionality and ability to incorporate stimuli-responsive and biocompatible components. In this study, functional star polymers with oligo (ethylene glycol) methyl ether methacrylate (OEOMA) arms and 2-(dimethylamino)ethyl methacrylate (DMAEMA) core units were synthesized via atom transfer radical polymerization (ATRP) using the “arm-first” strategy. The star polymers were used as nanoreactors for the in situ reduction of silver nitrate to form silver nanoparticles (AgNPs) without additional reducing agents. UV–Vis spectroscopy confirmed the formation of spherical AgNPs with absorption maxima around 430 nm, and transmission electron microscopy revealed uniform particle morphology. These hybrid nanomaterials (STR-AgNPs) were incorporated into polymethyl methacrylate (PMMA)-based bone cement to impart antibacterial properties. Mechanical testing showed that the compressive strength remained within acceptable limits, while antibacterial assays against E. coli demonstrated a significant inhibition of bacterial growth. These findings suggest that STR-AgNPs serve as promising candidates for infection-resistant bone implants, providing localized antibacterial effects while maintaining mechanical integrity and biocompatibility.
Keywords (EN)
  • star polymers

  • silver nanoparticles

  • bone cements

  • antibacterial activity

License
cc-bycc-by CC-BY - Attribution
Open access date
June 25, 2025
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