Published August 2014 | Version v1
Journal article

Gills are an initial target of zinc oxide nanoparticles in oysters Crassostrea gigas, leading to mitochondrial disruption and oxidative stress

  • 1. Department of Biochemistry, Federal University of Santa Catarina, 88040-900 Florianópolis, SC (Brazil)
  • 2. Department of Cell Biology, Embryology and Genetic, Federal University of Santa Catarina, 88049-900 Florianópolis, SC (Brazil)
  • 3. Centre for Bionano Interactions, University College Dublin, Dublin (Ireland)
  • 4. Federal Institute of Santa Catarina, Campus Garopaba, Laboratory of Histological Markers, 88495-000 Garopaba, SC (Brazil)
  • 5. School of Geography, Earth and Environmental Sciences, University of Plymouth, PL4 8AA Plymouth (United Kingdom)
  • 6. Department of Biochemistry, University College Cork, Cork (Ireland)

Description

Graphical abstract: - Highlights: • ZnONP exposure causes an initial accumulation of zinc in gills and later in digestive gland. • Zinc burden occurs by ZnONP endocytosis or uptake of ionic zinc after dissociation. • ZnONP exposure disrupts mitochondrial ultrastructure in both tissues. • Mitochondrial damage and oxidative stress are major features of ZnONP acute toxicity. - Abstract: The increasing industrial use of nanomaterials during the last decades poses a potential threat to the environment and in particular to organisms living in the aquatic environment. In the present study, the toxicity of zinc oxide nanoparticles (ZnONP) was investigated in Pacific oysters Crassostrea gigas. The nanoscale of ZnONP, in vehicle or ultrapure water, was confirmed, presenting an average size ranging from 28 to 88 nm. In seawater, aggregation was detected by TEM and DLS analysis, with an increased average size ranging from 1 to 2 μm. Soluble or nanoparticulated zinc presented similar toxicity, displaying a LC50 (96 h) around 30 mg/L. High zinc dissociation from ZnONP, releasing ionic zinc in seawater, is a potential route for zinc assimilation and ZnONP toxicity. To investigate mechanisms of toxicity, oysters were treated with 4 mg/L ZnONP for 6, 24 or 48 h. ZnONP accumulated in gills (24 and 48 h) and digestive glands (48 h). Ultrastructural analysis of gills revealed electron-dense vesicles near the cell membrane and loss of mitochondrial cristae (6 h). Swollen mitochondria and a more conspicuous loss of mitochondrial cristae were observed after 24 h. Mitochondria with disrupted membranes and an increased number of cytosolic vesicles displaying electron-dense material were observed 48 h post exposure. Digestive gland showed similar changes, but these were delayed relative to gills. ZnONP exposure did not greatly affect thiol homeostasis (reduced and oxidized glutathione) or immunological parameters (phagocytosis, hemocyte viability and activation and total hemocyte count). At 24 h post exposure, decreased (−29%) glutathione reductase (GR) activity was observed in gills, but other biochemical responses were observed only after 48 h of exposure: lower GR activity (−28%) and levels of protein thiols (−21%), increased index of lipid peroxidation (+49%) and GPx activity (+26%). In accordance with ultrastructural changes and zinc load, digestive gland showed delayed biochemical responses. Except for a decreased GR activity (−47%) at 48 h post exposure, the biochemical alterations seen in gills were not present in digestive gland. The results indicate that gills are able to incorporate zinc prior (24 h) to digestive gland (48 h), leading to earlier mitochondrial disruption and oxidative stress. Our data suggest that gills are the initial target of ZnONP and that mitochondria are organelles particularly susceptible to ZnONP in C. gigas

Availability note (English)

Available from http://dx.doi.org/10.1016/j.aquatox.2014.03.018

Additional details

Identifiers

DOI
10.1016/j.aquatox.2014.03.018;
PII
S0166-445X(14)00096-4;

Publishing Information

Journal Title
Aquatic Toxicology
Journal Volume
153
Journal Page Range
p. 27-38
ISSN
0166-445X
CODEN
AQTODG

Conference

Title
17. international symposium on pollutant responses in marine organisms
Acronym
PRIMO17
Dates
5-8 May 2013
Place
Faro (Portugal)

Optional Information

Copyright
Copyright (c) 2014 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.