Pharmacological potential of cerium oxide nanoparticles

Фармакологический потенциал наночастиц оксида церия
Lina Ghibelli, Enrico Traversa, Ivana Celardo, Jens Z. Pedersen
2011-01-01

antioxidant propertiescerium oxide nanoparticlesnanoceriaoxidative stressreactive oxygen species
Nanotechnology promises a revolution in pharmacology to improve or create ex novo therapies. Cerium oxide nanoparticles (nanoceria), well-known as catalysts, possess an astonishing pharmacological potential due to their antioxidant properties, deriving from a fraction of Ce(3+) ions present in CeO(2). These defects, compensated by oxygen vacancies, are enriched at the surface and therefore in nanosized particles. Reactions involving redox cycles between the Ce(3+) and Ce(4+) oxidation states allow nanoceria to react catalytically with superoxide and hydrogen peroxide, mimicking the behavior of two key antioxidant enzymes, superoxide dismutase and catalase, potentially abating all noxious intracellular reactive oxygen species (ROS) via a self-regenerating mechanism. Hence nanoceria, apparently well tolerated by the organism, might fight chronic inflammation and the pathologies associated with oxidative stress, which include cancer and neurodegeneration. Here we review the biological effects of nanoceria as they emerge from in vitro and in vivo studies, considering biocompatibility and the peculiar antioxidant mechanisms.
1
Cerium oxide nanoparticles exhibit antioxidant activity because surface-enriched Ce(3+) ions and oxygen vacancies enable redox cycling between Ce(3+) and Ce(4+).
2
In vitro and in vivo studies indicate potential applications against chronic inflammation and oxidative-stress-associated diseases, including cancer and neurodegeneration.
3
Nanoceria catalytically reacts with superoxide and hydrogen peroxide, mimicking superoxide dismutase and catalase.
4
The abstract characterizes nanoceria as apparently well tolerated, while emphasizing the need to consider biocompatibility and biological effects.
5
Their self-regenerating redox mechanism may reduce intracellular reactive oxygen species broadly, rather than being consumed during antioxidant activity.

Cerium oxide nanoparticles (nanoceria) in pharmacological and biological contexts

biological effects, biocompatibility, and self-regenerating antioxidant mechanisms of nanoceria in relation to oxidative stress and inflammation

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2011-01-01
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Lina Ghibelli
Enrico Traversa
Ivana Celardo
Jens Z. Pedersen
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