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Oxytetracycline-induced oxidative liver damage by disturbed mitochondrial dynamics and impaired enzyme antioxidants in largemouth bass (Micropterus salmoides).

Authors :
Li, Tong
Jin, Min
Huang, Lishi
Zhang, Yupeng
Zong, Jiali
Shan, Hongying
Kang, Hao
Xu, Man
Liu, Haifeng
Zhao, Ye
Cao, Quanquan
Jiang, Jun
Source :
Aquatic Toxicology. Aug2023, Vol. 261, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

• Oxytetracycline exposure caused mitochondrial damage and led to oxidative liver damage. • Oxytetracycline inhibited MAPK/Nrf2 pathway mediated enzyme antioxidant system. • Oxytetracycline -induced mitochondrial dynamics imbalance via PINK1/Parkin pathway. • Enzyme-treated soy protein can prevent Oxytetracycline-related oxidative liver damage. Oxytetracycline (OTC), a commonly used tetracycline antibiotic in aquaculture, has been found to cause significant damage to the liver of largemouth bass (Micropterus salmoides). This study revealed that OTC can lead to severe histopathological damage, structural changes at the cellular level, and increased levels of reactive oxygen species (ROS) in M. salmoides. Meanwhile, OTC impairs the activities of antioxidant enzyme (such as T-SOD, CAT, GST, GR) by suppressing the activation of MAPK/Nrf2 pathway. OTC disrupts mitochondrial dynamics and mitophagy through via PINK1/Parkin pathway. The accumulation of damaged mitochondria, combined with the inhibition of the antioxidant enzyme system, contributes to elevated ROS levels and oxidative liver damage in M. salmoides. Further investigations demonstrated that an enzyme-treated soy protein (ETSP) dietary supplement can help maintain mitochondrial dynamic balance by inhibiting the PINK1/Parkin pathway and activate the MAPK/Nrf2 pathway to counteract oxidative damage. In summary, these findings highlight that exposure to OTC disrupts mitochondrial dynamics and inhibits the antioxidant enzyme system, ultimately exacerbating oxidative liver damage in M. salmoides. We propose the use of a dietary supplement as a preventive measure against OTC-related side effects, providing valuable insights into the mechanisms of antibiotic toxicity in aquatic environments. Mechanism for OTC actions on oxidative liver damage of M. salmoides. (A) OTC induces oxidative liver damage. (B) ETSP protects the liver from OTC-related damage [Display omitted]. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0166445X
Volume :
261
Database :
Academic Search Index
Journal :
Aquatic Toxicology
Publication Type :
Academic Journal
Accession number :
169786657
Full Text :
https://doi.org/10.1016/j.aquatox.2023.106616