Antioxidant potential of nanomaterials.

Reactive oxygen species antioxidant nanomaterial oxidative stress

Journal

Turkish journal of biology = Turk biyoloji dergisi
ISSN: 1303-6092
Titre abrégé: Turk J Biol
Pays: Turkey
ID NLM: 9434434

Informations de publication

Date de publication:
2023
Historique:
received: 11 04 2023
revised: 31 08 2023
accepted: 10 08 2023
medline: 28 12 2023
pubmed: 28 12 2023
entrez: 28 12 2023
Statut: epublish

Résumé

The novel field of nanomaterials allows infinite possibilities in order to create antioxidant therapies. The present review is aimed to describe the state of art concerning on nanomaterials and their effects on reactive oxygen species (ROS) production. A wide range of nanoparticles has been designed for this purpose, and each one possesses some particular characteristics which allow these significant antioxidant results. Several in vivo and in vitro works state the ability of these nanoparticles to mimic the redox systems of the cells, and thus, the potential role of nanoparticles as antioxidant treatment for several diseases. This paper was written after a review of the articles published on the field, using the "PubMed" and "Research Gate" databases. The main types of nanoparticles are listed and explained below, offering a global vision of the field with great interest for research. Antitumor chemo- and radiotherapies have been found to improve efficacy by enhancing the selectivity of cytocidal effects and minimizing systemic adverse effects when such materials are used. Furthermore, catalytic nanomaterials can execute energy-free antioxidant cycles that scavenge the most harmful reactive oxygen species via SOD- and catalase-like activities. This unique method is projected to result in significant gains in the long run. However, due to a lack of understanding of potential adverse body reactions to these novel strategies, caution must be exercised. Analyzing the biocompatibility of these nanomaterials carefully, particularly in terms of biokinetics and the problems that could arise from long-term retention of nonbiodegradable inorganic nanomaterials, is required.

Sections du résumé

Background/aim UNASSIGNED
The novel field of nanomaterials allows infinite possibilities in order to create antioxidant therapies. The present review is aimed to describe the state of art concerning on nanomaterials and their effects on reactive oxygen species (ROS) production. A wide range of nanoparticles has been designed for this purpose, and each one possesses some particular characteristics which allow these significant antioxidant results. Several in vivo and in vitro works state the ability of these nanoparticles to mimic the redox systems of the cells, and thus, the potential role of nanoparticles as antioxidant treatment for several diseases.
Materials and methods UNASSIGNED
This paper was written after a review of the articles published on the field, using the "PubMed" and "Research Gate" databases.
Results UNASSIGNED
The main types of nanoparticles are listed and explained below, offering a global vision of the field with great interest for research. Antitumor chemo- and radiotherapies have been found to improve efficacy by enhancing the selectivity of cytocidal effects and minimizing systemic adverse effects when such materials are used. Furthermore, catalytic nanomaterials can execute energy-free antioxidant cycles that scavenge the most harmful reactive oxygen species via SOD- and catalase-like activities.
Conclusion UNASSIGNED
This unique method is projected to result in significant gains in the long run. However, due to a lack of understanding of potential adverse body reactions to these novel strategies, caution must be exercised. Analyzing the biocompatibility of these nanomaterials carefully, particularly in terms of biokinetics and the problems that could arise from long-term retention of nonbiodegradable inorganic nanomaterials, is required.

Identifiants

pubmed: 38152621
doi: 10.55730/1300-0152.2658
pii: turkjbiol-47-4-218
pmc: PMC10751091
doi:

Types de publication

Journal Article Review

Langues

eng

Pagination

218-235

Informations de copyright

© TÜBİTAK.

Auteurs

David González-Flores (D)

Department of Anatomy, Cell Biology and Zoology, Faculty of Sciences, University of Extremadura, Badajoz, Spain.

Javier Espino (J)

Department of Physiology, Faculty of Sciences, University of Extremadura, Badajoz, Spain.

José Antonio Pariente (JA)

Department of Physiology, Faculty of Sciences, University of Extremadura, Badajoz, Spain.

Classifications MeSH