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Differential Cytotoxicity Induced by Transition Metal Oxide Nanoparticles is a Function of Cell Killing and Suppression of Cell Proliferation

  • Larry M. Tolliver
  • , Natalie J. Holl
  • , Fang Yao Stephen Hou
  • , Han-Jung Lee
  • , Melissa H. Cambre
  • , Yue-Wern Huang

Research output: Contribution to journalArticlepeer-review

Abstract

The application of nanoparticles (NPs) in industry is on the rise, along with the potential for human exposure. While the toxicity of microscale equivalents has been studied, nanoscale materials exhibit different properties and bodily uptake, which limits the prediction ability of microscale models. Here, we examine the cytotoxicity of seven transition metal oxide NPs in the fourth period of the periodic table of the chemical elements. We hypothesized that NP-mediated cytotoxicity is a function of cell killing and suppression of cell proliferation. To test our hypothesis, transition metal oxide NPs were tested in a human lung cancer cell model (A549). Cells were exposed to a series of concentrations of TiO 2 , Cr 2 O 3 , Mn 2 O3, Fe 2 O 3 , NiO, CuO, or ZnO for either 24 or 48 h. All NPs aside from Cr 2 O 3 and Fe 2 O 3 showed a time-and dose-dependent decrease in viability. All NPs significantly inhibited cellular proliferation. The trend of cytotoxicity was in parallel with that of proliferative inhibition. Toxicity was ranked according to severity of cellular responses, revealing a strong correlation between viability, proliferation, and apoptosis. Cell cycle alteration was observed in the most toxic NPs, which may have contributed to promoting apoptosis and suppressing cell division rate. Collectively, our data support the hypothesis that cell killing and cell proliferative inhibition are essential independent variables in NP-mediated cytotoxicity.

Original languageAmerican English
JournalInternational Journal of Molecular Sciences
Volume21
DOIs
StatePublished - Mar 1 2020

Keywords

  • Apoptosis
  • Cell cycle
  • Cell proliferation
  • Nanoparticle
  • Transition metal oxide

Disciplines

  • Biology

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