Potential toxicity of superparamagnetic iron oxide nanoparticles (SPION)

Потенциальная токсичность суперпарамагнитных наночастиц оксида железа (SPION)
Gareth Jenkins, Shareen H. Doak, Neenu Singh, Romisa Asadi
2010-01-01

DNA damagecytotoxicityiron homeostasisoxidative stresssuperparamagnetic iron oxide nanoparticles
Superparamagnetic iron oxide nanoparticles (SPION) are being widely used for various biomedical applications, for example, magnetic resonance imaging, targeted delivery of drugs or genes, and in hyperthermia. Although, the potential benefits of SPION are considerable, there is a distinct need to identify any potential cellular damage associated with these nanoparticles. Besides focussing on cytotoxicity, the most commonly used determinant of toxicity as a result of exposure to SPION, this review also mentions the importance of studying the subtle cellular alterations in the form of DNA damage and oxidative stress. We review current studies and discuss how SPION, with or without different surface coating, may cause cellular perturbations including modulation of actin cytoskeleton, alteration in gene expression profiles, disturbance in iron homeostasis and altered cellular responses such as activation of signalling pathways and impairment of cell cycle regulation. The importance of protein-SPION interaction and various safety considerations relating to SPION exposure are also addressed.
1
Assessing SPION toxicity requires examining DNA damage and oxidative stress in addition to conventional cytotoxicity measurements.
2
Protein–SPION interactions and nanoparticle-related safety considerations are important determinants of exposure-associated cellular perturbations.
3
SPION exposure may activate signaling pathways and impair cell-cycle regulation, indicating broader cellular effects than overt cell death.
4
SPION offer substantial biomedical benefits in MRI, targeted drug or gene delivery, and hyperthermia applications.
5
SPION, with or without surface coatings, can perturb the actin cytoskeleton, gene-expression profiles, and cellular iron homeostasis.

superparamagnetic iron oxide nanoparticles (SPION)

potential cellular toxicity and associated cellular perturbations, including cytotoxicity, DNA damage, oxidative stress, cytoskeletal and gene-expression alterations, iron-homeostasis disturbance, and altered cellular responses

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2010-01-01
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Gareth Jenkins
Shareen H. Doak
Neenu Singh
Romisa Asadi
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