4.7 Article

Mechanism of copper nanoparticle toxicity in rainbow trout olfactory mucosa

期刊

ENVIRONMENTAL POLLUTION
卷 284, 期 -, 页码 -

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ELSEVIER SCI LTD
DOI: 10.1016/j.envpol.2021.117141

关键词

Olfactory mucosa; Copper nanoparticles; Mechanism of toxicity; Sensory neurons; Rainbow trout

资金

  1. NSERC [RGPIN-2015-04492]
  2. Campus Alberta Innovation Program

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The study found that CuNPs are bioavailable to olfactory mucosal cells and have different effects on rainbow trout compared to Cu2+. RNA-seq analysis revealed distinct mechanisms of action between the two contaminants, with CuNPs affecting olfactory signal transduction, calcium homeostasis, and synaptic vesicular signaling in OSNs. CuNPs also impacted neuroregenerative pathways and suppressed inflammatory signaling, without inducing oxidative stress or apoptosis.
Chemosensory perception is crucial for fish reproduction and survival. Direct contact of olfactory neuroepithelium to the surrounding environment makes it vulnerable to contaminants in aquatic ecosystems. Copper nanoparticles (CuNPs), which are increasingly used in commercial and domestic applications due their exceptional properties, can impair fish olfactory function. However, the molecular events underlying olfactory toxicity of CuNPs are largely unexplored. Our results suggested that CuNPs were bioavailable to olfactory mucosal cells. Using RNA-seq, we compared the effect of CuNPs and copper ions (Cu2+) on gene transcript profiles of rainbow trout (Oncorhynchus mykiss) olfactory mucosa. The narrow overlap in differential gene expression between the CuNP- and Cu2+-exposed fish revealed that these two contaminants exert their effects through distinct mechanisms. We propose a transcript-based conceptual model that shows that olfactory signal transduction, calcium homeostasis, and synaptic vesicular signaling were affected by CuNPs in the olfactory sensory neurons (OSNs). Neuroregenerative pathways were also impaired by CuNPs. In contrast, Cu2+ did not induce toxicity pathways and rather upregulated regeneration pathways. Both Cu treatments reduced immune system pathway transcripts. However, suppression of transcripts that were associated with inflammatory signaling was only observed with CuNPs. Neither oxidative stress nor apoptosis were triggered by Cu2+ or CuNPs in mucosal cells. Dysregulation of transcripts that regulate function, maintenance, and reestablishment of damaged olfactory mucosa represents critical mechanisms of toxicity of CuNPs. The loss of olfaction by CuNPs may impact survival of rainbow trout and impose an ecological risk to fish populations in contaminated environments. Crown Copyright (C) 2021 Published by Elsevier Ltd. All rights reserved.

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