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Antibacterial approaches in tissue engineering using metal ions and nanoparticles: From mechanisms to applications

Bacterial infection of implanted scaffolds may have fatal consequences and, in combination with the emergence of multidrug bacterial resistance, the development of advanced antibacterial biomaterials and constructs is of great interest. Since decades ago, metals and their ions had been used to minim...

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Autores principales: Godoy-Gallardo, Maria, Eckhard, Ulrich, Delgado, Luis M., de Roo Puente, Yolanda J.D., Hoyos-Nogués, Mireia, Gil, F. Javier, Perez, Roman A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8131399/
https://www.ncbi.nlm.nih.gov/pubmed/34027235
http://dx.doi.org/10.1016/j.bioactmat.2021.04.033
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author Godoy-Gallardo, Maria
Eckhard, Ulrich
Delgado, Luis M.
de Roo Puente, Yolanda J.D.
Hoyos-Nogués, Mireia
Gil, F. Javier
Perez, Roman A.
author_facet Godoy-Gallardo, Maria
Eckhard, Ulrich
Delgado, Luis M.
de Roo Puente, Yolanda J.D.
Hoyos-Nogués, Mireia
Gil, F. Javier
Perez, Roman A.
author_sort Godoy-Gallardo, Maria
collection PubMed
description Bacterial infection of implanted scaffolds may have fatal consequences and, in combination with the emergence of multidrug bacterial resistance, the development of advanced antibacterial biomaterials and constructs is of great interest. Since decades ago, metals and their ions had been used to minimize bacterial infection risk and, more recently, metal-based nanomaterials, with improved antimicrobial properties, have been advocated as a novel and tunable alternative. A comprehensive review is provided on how metal ions and ion nanoparticles have the potential to decrease or eliminate unwanted bacteria. Antibacterial mechanisms such as oxidative stress induction, ion release and disruption of biomolecules are currently well accepted. However, the exact antimicrobial mechanisms of the discussed metal compounds remain poorly understood. The combination of different metal ions and surface decorations of nanoparticles will lead to synergistic effects and improved microbial killing, and allow to mitigate potential side effects to the host. Starting with a general overview of antibacterial mechanisms, we subsequently focus on specific metal ions such as silver, zinc, copper, iron and gold, and outline their distinct modes of action. Finally, we discuss the use of these metal ions and nanoparticles in tissue engineering to prevent implant failure.
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spelling pubmed-81313992021-05-21 Antibacterial approaches in tissue engineering using metal ions and nanoparticles: From mechanisms to applications Godoy-Gallardo, Maria Eckhard, Ulrich Delgado, Luis M. de Roo Puente, Yolanda J.D. Hoyos-Nogués, Mireia Gil, F. Javier Perez, Roman A. Bioact Mater Article Bacterial infection of implanted scaffolds may have fatal consequences and, in combination with the emergence of multidrug bacterial resistance, the development of advanced antibacterial biomaterials and constructs is of great interest. Since decades ago, metals and their ions had been used to minimize bacterial infection risk and, more recently, metal-based nanomaterials, with improved antimicrobial properties, have been advocated as a novel and tunable alternative. A comprehensive review is provided on how metal ions and ion nanoparticles have the potential to decrease or eliminate unwanted bacteria. Antibacterial mechanisms such as oxidative stress induction, ion release and disruption of biomolecules are currently well accepted. However, the exact antimicrobial mechanisms of the discussed metal compounds remain poorly understood. The combination of different metal ions and surface decorations of nanoparticles will lead to synergistic effects and improved microbial killing, and allow to mitigate potential side effects to the host. Starting with a general overview of antibacterial mechanisms, we subsequently focus on specific metal ions such as silver, zinc, copper, iron and gold, and outline their distinct modes of action. Finally, we discuss the use of these metal ions and nanoparticles in tissue engineering to prevent implant failure. KeAi Publishing 2021-05-08 /pmc/articles/PMC8131399/ /pubmed/34027235 http://dx.doi.org/10.1016/j.bioactmat.2021.04.033 Text en © 2021 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Godoy-Gallardo, Maria
Eckhard, Ulrich
Delgado, Luis M.
de Roo Puente, Yolanda J.D.
Hoyos-Nogués, Mireia
Gil, F. Javier
Perez, Roman A.
Antibacterial approaches in tissue engineering using metal ions and nanoparticles: From mechanisms to applications
title Antibacterial approaches in tissue engineering using metal ions and nanoparticles: From mechanisms to applications
title_full Antibacterial approaches in tissue engineering using metal ions and nanoparticles: From mechanisms to applications
title_fullStr Antibacterial approaches in tissue engineering using metal ions and nanoparticles: From mechanisms to applications
title_full_unstemmed Antibacterial approaches in tissue engineering using metal ions and nanoparticles: From mechanisms to applications
title_short Antibacterial approaches in tissue engineering using metal ions and nanoparticles: From mechanisms to applications
title_sort antibacterial approaches in tissue engineering using metal ions and nanoparticles: from mechanisms to applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8131399/
https://www.ncbi.nlm.nih.gov/pubmed/34027235
http://dx.doi.org/10.1016/j.bioactmat.2021.04.033
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