4.6 Article

Comparison of the neurotoxicity associated with cobalt nanoparticles and cobalt chloride in Wistar rats

Journal

TOXICOLOGY AND APPLIED PHARMACOLOGY
Volume 369, Issue -, Pages 90-99

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.taap.2019.03.003

Keywords

CoNPs; CoCl2; Neurotoxic effects; NRF2

Funding

  1. National Natural Science Foundation of China [81573195, 81172715]
  2. Joint Funds for the Innovation of Science and Technology, Fujian province [2017Y9105]
  3. Training Project of Young Talents in Health System of Fujian Province (Health and Family Planning Commission of Fujian Province) [2015-ZQN-ZD-29]
  4. High-level Personnel Research Start-up Funding of Fujian Medical University [XRCZX2018002]
  5. Sailing Funding of Fujian Medical University [2017ZQ1010]
  6. National Institute of Environmental Health Sciences (NIEHS) [R01ES07331, R01ES10563, R01ES020852]

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Cobalt nanoparticles (CoNPs) have been widely used in industry given their physical, chemical and magnetic properties; however, CoNPs may cause neurological symptoms and diseases in human, yet their mechanisms of toxicity remain unknown. Here, we used male Wistar rats to investigate differences in the toxic effects associated with CoNPs and CoCl2. Upon exposure to CoCl2, and 96 nm or 123 nm CoNPs at the same concentration, the Co(2+)content in CoCl(2 )group was significantly higher than that in either the CoNPs groups in brain tissues and blood, but lower in liver. Significant neural damage was observed in both hippocampus and cortex of the temporal lobe. Increase malondialdehyde (MDA) content and CASPASE 9 protein level were associated both with CoCl2 and CoNPs treatments, consistent with lipid perioxidation and apoptosis. Heme oxygenase-1 and (NF-E2) p45-related factor-2 protein levels were elevated in response to 96 nm CoNPs exposure. In PC12 cells, NRF2 downregulation led to reduced cell viability and increased apoptotic rate. In conclusion, both CoNPs and CoCl2 cause adverse neural effects, with nanoparticles showing greater neurotoxic potency. In addition, NRF2 protects neural cells from damage induced by CoCl2 and CoNPs by activating downstream antioxidant responses.

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