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Identification and molecular characterization of two Cu/Zn-SODs and Mn-SOD in the marine ciliate Euplotes crassus: Modulation of enzyme activity and transcripts in response to copper and cadmium

Authors
Kim, Ji-SooKim, HokyunYim, BoraRhee, Jae-SungWon, Eun-JiLee, Young-Mi
Issue Date
Jun-2018
Publisher
Elsevier BV
Keywords
Cadmium; Ciliate; Copper; Euplotes crassus; Superoxide dismutase
Citation
Aquatic Toxicology, v.199, pp 296 - 304
Pages
9
Indexed
SCI
SCIE
SCOPUS
Journal Title
Aquatic Toxicology
Volume
199
Start Page
296
End Page
304
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/114816
DOI
10.1016/j.aquatox.2018.03.020
ISSN
0166-445X
1879-1514
Abstract
The superoxide dismutase (SOD) family is a first line antioxidant enzyme group involved in transformation of the superoxide anion (O2 −) into hydrogen peroxide (H2O2) and O2. SOD gene expression patterns and enzyme activities therefore have a role as molecular biomarkers in evaluating the oxidative stress status of aquatic organisms. However, antioxidant enzyme systems are yet to be fully explored in the marine ciliates. In this study, we identified and characterized two types of Cu/Zn SODs (Ec-Cu/ZnSOD1 and Ec-Cu/ZnSOD2) and Ec-Mn SOD in the marine ciliate Euplotes crassus. Subsequently, SOD activity and transcriptional modulation of the relevant genes were investigated after the exposure to Cd and Cu for 8 h. All Ec-SODs showed conserved domains and metal binding sites on their active sites. Total SOD activity was induced at 1 h after exposure to Cd (125 and 1000 μg/L), and showed a marginal increase at 1-h exposure to Cu (10 and 100 μg/L). However, SOD activity was maintained at a steady level under Cd and decreased under Cu exposure conditions at 3 h and 8 h. mRNA expression of both the Ec-Cu/Zn-SODs and Mn-SOD were remarkably elevated after the exposure to Cd (250-1000 μg/L, maximum 4-fold, p < 0.05) and, in particular, Cu (25-100 μg/L, maximum > 20-fold, p < 0.05), in a concentration - dependent manner. These findings suggest that Ec-SODs may be actively involved in cellular protection against metal - mediated oxidative stress. This study is therefore helpful in understanding the molecular responses for metal toxicity in the ciliates. © 2018 Elsevier B.V.
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ERICA부총장 한양인재개발원 (ERICA 창의융합교육원)
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