The effects of enrofloxacin exposure on responses to oxidative stress, intestinal structure and intestinal microbiome community of largemouth bass (Micropterus salmoides)

被引:7
|
作者
Liu C. [1 ]
Pan K. [1 ]
Xu H. [1 ]
Song Y. [1 ]
Qi X. [1 ]
Lu Y. [1 ]
Jiang X. [1 ]
Liu H. [1 ]
机构
[1] College of Animal Science and Technology, Northwest A&F University, Shaanxi, Yangling
关键词
Enrofloxacin; Intestinal microbiota; Intestine health; Micropterus salmoides; Oxidative stress;
D O I
10.1016/j.chemosphere.2023.140751
中图分类号
学科分类号
摘要
Antibiotic residues in the aquaculture environments may lead to antibiotic resistance, and potentially exert adverse effects on health of the non-target organisms and humans. In order to evaluate the effect of enrofloxacin of environmental concentrations on largemouth bass (Micropterus salmoides). Two hundred and seventy largemouth basses (with an average weight of 7.88 ± 0.60 g) were randomly divided into three groups, and separately exposed to 0, 1, 100 μg/L enrofloxacin (Control, ENR1, ENR100) for 30 days to detect the effect of enrofloxacin on the growth performance, oxidative stress, intestinal microbiota structure, inflammatory response and structure of the intestine. The results showed that ENR significantly reduced the final body weight (FBW) and weight gain rate (WGR), and increased feed conversion ratio (FCR) (P < 0.05). The histopathological analysis revealed that the villus width and muscular thickness of anterior intestine were significantly decreased with the increasing of enrofloxacin concentration. The activity of SOD was significantly increased at enrofloxacin stress, while CAT and POD activity were significantly decreased compared to control group (P < 0.05). The activities of lysozyme (LZM), alkaline phosphatase (AKP) and peroxidase (POD) in ENR1 was higher than that of control and ENR100 groups. Enrofloxacin treatment up-regulated the expression IL-1β and TNF-α, and down-regulated IL-10, and decreasing the expression level ZO-1, claudin-1, and occludin. Furthermore, the enrofloxacin treatment significantly decreased the intestinal bacterial diversity (P < 0.05). Exposure to 100 μg/L enrofloxacin obviously increased the relative abundance of Bacteroidota, Myxococcota, and Zixibacteria of fish gut, and reduced Firmicutes; 1 μg/L enrofloxacin considerably increased Bacteroidota, Myxococcota, and Actinobacteria, and reduced Firmicutes. The relative abundance of DTB120 and Elusimicrobiota was positively correlated with the occludin and claudin-1 gene. Taken together, exposure to enrofloxacin inhibited the growth of largemouth bass, influenced intestinal health, and induced dysbiosis of the intestinal microbiota. © 2023 Elsevier Ltd
引用
收藏
相关论文
共 50 条
  • [1] Effects of polystyrene nanoplastics on oxidative stress, histopathology and intestinal microbiota in largemouth bass (Micropterus salmoides)
    Chen, Mingshi
    Yue, Yuhua
    Bao, Xiaoxue
    Feng, Xianjun
    Ou, Zhuozhi
    Qiu, Yanming
    Yang, Kelin
    Yang, Ying
    Yu, Yingying
    Yu, Hui
    AQUACULTURE REPORTS, 2022, 27
  • [2] The effect of Astragalus polysaccharides on the repair of adverse effects in largemouth bass (Micropterus salmoides) under enrofloxacin stress
    Qi, Xiaoyu
    Xu, Hongzhou
    Long, Jingfei
    Yan, Chenyang
    Pan, Kuiquan
    Song, Yanzhen
    Jiang, Xinxin
    Liu, Haixia
    AQUACULTURE, 2024, 592
  • [3] Effects of dietary salidroside on intestinal health, immune parameters and intestinal microbiota in largemouth bass ( Micropterus salmoides )
    Wei, Baocan
    Li, Huang
    Han, Tao
    Luo, Qiulan
    Yang, Min
    Qin, Qiwei
    Chen, Yifang
    Wei, Shina
    FISH & SHELLFISH IMMUNOLOGY, 2024, 151
  • [4] Effects of Dietary Ursolic Acid on Growth Performance and Intestinal Health of Largemouth Bass (Micropterus salmoides)
    Wang, Min
    Wang, Yongfang
    Li, Xiang
    Yin, Yue
    Zhang, Xiwen
    Wu, Shuang
    Wang, Hongquan
    Zhao, Yurong
    ANIMALS, 2024, 14 (17):
  • [5] Effects of Virgin Microplastics on Growth, Intestinal Morphology and Microbiota on Largemouth Bass (Micropterus salmoides)
    Zhang, Chaonan
    Wang, Qiujie
    Wang, Shaodan
    Pan, Zhengkun
    Sun, Di
    Cheng, Yanbo
    Zou, Jixing
    Xu, Guohuan
    APPLIED SCIENCES-BASEL, 2021, 11 (24):
  • [6] Effects of dietary berberine hydrochloride inclusion on growth, antioxidant capacity, glucose metabolism and intestinal microbiome of largemouth bass (Micropterus salmoides)
    Chen, Shiwen
    Jiang, Xueluan
    Liu, Ning
    Ren, Minchun
    Wang, Zhenjie
    Li, Mingkong
    Chen, Naisong
    Li, Songlin
    AQUACULTURE, 2022, 552
  • [7] Long-term crowding stress disrupts intestinal homeostasis in largemouth bass (Micropterus salmoides)
    Li, Meijia
    Yang, Leshan
    Liu, Ying
    Ma, He
    AQUACULTURE, 2025, 599
  • [8] High dietary starch impairs intestinal health and microbiota of largemouth bass, Micropterus salmoides
    Zhou, Yue-Lang
    He, Guang-Lun
    Jin, Tao
    Chen, Yong-Jun
    Dai, Fang-Yin
    Luo, Li
    Lin, Shi-Mei
    AQUACULTURE, 2021, 534
  • [9] Toxicology of aspartame to largemouth bass ( Micropterus salmoides) on the basis of antioxidant capacity, liver histology and the intestinal microbiota
    Su, Qiuwen
    Yang, Jiafa
    Yang, Zixin
    Kong, Qin
    Xiao, Guohong
    Liu, Dan
    Tang, Huijuan
    ANIMAL FEED SCIENCE AND TECHNOLOGY, 2025, 320
  • [10] Effects of Lactobacillus plantarum and Bacillus subtilis on growth, immunity and intestinal flora of largemouth bass(Micropterus salmoides)
    Jin, Wangyang
    Jiang, Lihua
    Hu, Siling
    Zhu, Aiyi
    AQUACULTURE, 2024, 583