Comparison of the Mechanism of Toxicity of Zinc Oxide and Cerium Oxide Nanoparticles Based on Dissolution and Oxidative Stress Properties

Сравнение механизмов токсичности наночастиц оксида цинка и оксида церия на основе их свойств растворения и окислительного стресса
André E. Nel, Jeffrey I. Zink, Tian Xia, Michael Kovochich, Benjamin Gilbert, Monty Liong, Lutz Mädler, Joanne I. Yeh, Haibin Shi
2008-10-01

metal oxide nanoparticlesnanoparticle cytotoxicityoxidative stressreactive oxygen specieszinc oxide dissolution
Nanomaterials (NM) exhibit novel physicochemical properties that determine their interaction with biological substrates and processes. Three metal oxide nanoparticles that are currently being produced in high tonnage, TiO(2), ZnO, and CeO(2), were synthesized by flame spray pyrolysis process and compared in a mechanistic study to elucidate the physicochemical characteristics that determine cellular uptake, subcellular localization, and toxic effects based on a test paradigm that was originally developed for oxidative stress and cytotoxicity in RAW 264.7 and BEAS-2B cell lines. ZnO induced toxicity in both cells, leading to the generation of reactive oxygen species (ROS), oxidant injury, excitation of inflammation, and cell death. Using ICP-MS and fluorescent-labeled ZnO, it is found that ZnO dissolution could happen in culture medium and endosomes. Nondissolved ZnO nanoparticles enter caveolae in BEAS-2B but enter lysosomes in RAW 264.7 cells in which smaller particle remnants dissolve. In contrast, fluorescent-labeled CeO(2) nanoparticles were taken up intact into caveolin-1 and LAMP-1 positive endosomal compartments, respectively, in BEAS-2B and RAW 264.7 cells, without inflammation or cytotoxicity. Instead, CeO(2) suppressed ROS production and induced cellular resistance to an exogenous source of oxidative stress. Fluorescent-labeled TiO(2) was processed by the same uptake pathways as CeO(2) but did not elicit any adverse or protective effects. These results demonstrate that metal oxide nanoparticles induce a range of biological responses that vary from cytotoxic to cytoprotective and can only be properly understood by using a tiered test strategy such as we developed for oxidative stress and adapted to study other aspects of nanoparticle toxicity.
1
CeO2 nanoparticles were internalized intact into endosomal compartments without inflammation or cytotoxicity, while suppressing ROS and increasing resistance to oxidative stress.
2
Metal oxide nanoparticles produced responses ranging from cytotoxicity to cytoprotection, requiring tiered testing to link physicochemical properties with biological effects.
3
TiO2 nanoparticles followed uptake pathways similar to CeO2 but produced neither adverse nor protective cellular effects.
4
ZnO dissolution occurred in culture medium and endosomes; residual particles localized to caveolae in BEAS-2B cells and lysosomes in RAW 264.7 cells.
5
ZnO nanoparticles caused toxicity in RAW 264.7 and BEAS-2B cells, generating ROS, oxidative injury, inflammation, and cell death.

Metal oxide nanoparticles (ZnO, CeO2, and TiO2) in RAW 264.7 and BEAS-2B cells

Mechanisms of nanoparticle dissolution, cellular uptake and subcellular localization, oxidative-stress modulation, and resulting cytotoxic or cytoprotective effects

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2008-10-01
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André E. Nel
Jeffrey I. Zink
Tian Xia
Michael Kovochich
Benjamin Gilbert
Monty Liong
Lutz Mädler
Joanne I. Yeh
Haibin Shi
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