4.8 Article

Use of a Rapid Cytotoxicity Screening Approach To Engineer a Safer Zinc Oxide Nanoparticle through Iron Doping

期刊

ACS NANO
卷 4, 期 1, 页码 15-29

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nn901503q

关键词

nanoparticle; nanotoxicology; high content screening; hazard ranking; zinc oxide; dissolution; iron doping

资金

  1. National Science Foundation
  2. Environmental Protection Agency [EF 0830117]
  3. UC TSRTP
  4. US Public Health Service [U19 A1070453, ROI ES01 6746, RC2 E501 8766]
  5. US EPA STAR [RD83241301]
  6. Southern California Particle Center
  7. DOE BES [DE-AC02-OSCH11231]
  8. NATIONAL INSTITUTE OF ALLERGY AND INFECTIOUS DISEASES [U19AI070453] Funding Source: NIH RePORTER
  9. NATIONAL INSTITUTE OF ENVIRONMENTAL HEALTH SCIENCES [U19ES019528, RC2ES018766, R01ES016746] Funding Source: NIH RePORTER

向作者/读者索取更多资源

The establishment of verifiably safe nanotechnology requires the development of assessment tools to Identify hazardous nanomaterial properties that could be modified to improve nanomaterial safety. While there is a lot of debate of what constitutes appropriate safety screening methods, one approach Is to use the assessment of cellular injury pathways to collect knowledge about hazardous material properties that could lead to harm to humans and the environment. We demonstrate the use of a multiparameter cytotoxicity assay that evaluates toxic oxidative stress to compare the effects of titanium dioxide (TiO2), cerium oxide (CeO2), and zinc oxide (ZnO) nanoparticles in bronchial epithelial and macrophage cell lines. The nanoparticles were chosen on the basis of their volume of production and likelihood of spread to the environment. Among the materials, dissolution of ZnO nanciparticles and Zn2+ release were capable of ROS generation and activation of an integrated cytotoxic pathway that includes intracellular calcium flux, mitochondrial depolarization, and plasma membrane leakage. These responses were chosen on the basis of the compatibility of the fluorescent dyes that contemporaneously assess their response characteristics by a semiautomated epifluorescence procedure. Purposeful reduction of ZnO cytotoxicity was achieved by iron doping, which changed the material matrix to slow Zn2+ release. In summary, we demonstrate the utility of a rapid throughput, Integrated biological oxidative stress response pathway to perform hazard ranking of a small batch of metal oxide nanciparticles, in addition to showing how this assay can be used to improve nanosafety by decreasing ZnO dissolution through Fe doping.

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