Methylmercury-induced changes in gene transcription associated with neuroendocrine disruption in largemouth bass (Micropterus salmoides)

被引:15
|
作者
Richter, Catherine A. [1 ]
Martyniuk, Christopher J. [2 ,3 ]
Annis, Mandy L. [1 ]
Brumbaugh, William G. [1 ]
Chasar, Lia C. [4 ]
Denslow, Nancy D. [2 ,3 ]
Tillitt, Donald E. [1 ]
机构
[1] Columbia Environm Res Ctr, US Geol Survey, Columbia, MO 65201 USA
[2] Univ Florida, Dept Physiol Sci, Gainesville, FL 32611 USA
[3] Univ Florida, Ctr Environm & Human Toxicol, Gainesville, FL 32611 USA
[4] Florida Integrated Sci Ctr, US Geol Survey, Tallahassee, FL 32303 USA
基金
美国国家卫生研究院;
关键词
Sub-network enrichment analysis; Transcriptomics; Neurotoxicity; Neuroendocrine disruption; Movement disorders; Fish; CARP CYPRINUS-CARPIO; FRESH-WATER FISH; DIETARY METHYLMERCURY; REPRODUCTIVE HEALTH; NERVOUS-SYSTEM; MERCURY; EXPRESSION; CEREBELLUM; MICROARRAY; BIOMARKERS;
D O I
10.1016/j.ygcen.2014.03.029
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Methyl-mercury (MeHg) is a potent neuroendocrine disruptor that impairs reproductive processes in fish. The objectives of this study were to (1) characterize transcriptomic changes induced by MeHg exposure in the female largemouth bass (LMB) hypothalamus under controlled laboratory conditions, (2) investigate the health and reproductive impacts of MeHg exposure on male and female largemouth bass (LMB) in the natural environment, and (3) identify MeHg-associated gene expression patterns in whole brain of female LMB from MeHg-contaminated habitats. The laboratory experiment was a single injection of 2.5 mu g MeHg/g body weight for 96 h exposure. The field survey compared river systems in Florida, USA with comparably lower concentrations of MeHg (Wekiva, Santa Fe, and St. Johns Rivers) in fish and one river system with LMB that contained elevated concentrations of MeHg (St. Marys River). Microarray analysis was used to quantify transcriptomic responses to MeHg exposure. Although fish at the high-MeHg site did not show overt health or reproductive impairment, there were MeHg-responsive genes and pathways identified in the laboratory study that were also altered in fish from the high-MeHg site relative to fish at the low-MeHg sites. Gene network analysis suggested that MeHg regulated the expression targets of neuropeptide receptor and steroid signaling, as well as structural components of the cell. Disease-associated gene networks related to MeHg exposure, based upon expression data, included cerebellum ataxia, movement disorders, and hypercalcemia. Gene responses in the CNS are consistent with the documented neurotoxicological and neuroendocrine disrupting effects of MeHg in vertebrates. Published by Elsevier Inc.
引用
收藏
页码:215 / 224
页数:10
相关论文
共 50 条
  • [41] Quantifying brood predation in Largemouth Bass (Micropterus salmoides) associated with catch-and-release angling of nesting males
    Jeffrey A. Stein
    David P. Philipp
    Environmental Biology of Fishes, 2015, 98 : 145 - 154
  • [42] Cobalt-60 and electron beam irradiation-induced lipid oxidation in largemouth bass (Micropterus salmoides)
    Li, Hai-Lan
    Yu, Ying-Hui
    Xiong, Guang-Quan
    Liao, Tao
    Zu, Xiao-Yan
    JOURNAL OF THE SCIENCE OF FOOD AND AGRICULTURE, 2020, 100 (12) : 4612 - 4617
  • [43] Heat stress-induced endoplasmic reticulum stress promotes liver apoptosis in largemouth bass (Micropterus salmoides)
    Zhao, Xuqian
    Li, Lingling
    Li, Caijuan
    Liu, Enguang
    Zhu, Hao
    Ling, Qufei
    AQUACULTURE, 2022, 546
  • [44] Genome-Wide Identification, Sequence Alignment, and Transcription of Five Sex-Related Genes in Largemouth Bass (Micropterus Salmoides)
    Zhang, Xinhui
    Ruan, Zhiqiang
    Sun, Chengfei
    Hu, Cancan
    Huang, Yu
    You, Xinxin
    Wang, Xinwen
    Xu, Junmin
    Liu, Huan
    Liu, Xin
    Ye, Xing
    Shi, Qiong
    FRONTIERS IN BIOSCIENCE-LANDMARK, 2024, 29 (02):
  • [45] The Protective Effects and Immunological Responses Induced by a Carboxymethyl Cellulose Microcapsule-Coated Inactivated Vaccine Against Largemouth Bass Ranavirus (LMBRaV) in Largemouth Bass (Micropterus salmoides)
    Zhai, Jiale
    Fan, Yuding
    Li, Yiqun
    Xue, Mingyang
    Meng, Yan
    Huang, Zhenyu
    Ma, Jie
    Zhou, Yong
    Jiang, Nan
    VACCINES, 2025, 13 (03)
  • [46] Analysis of changes in nutrient salts and other water quality indexes in the pond water for largemouth bass (micropterus salmoides) farming
    Qiu, Junyi
    Zhang, Chunyan
    Lv, Zhaojun
    Zhang, Zhen
    Chu, Yuxuan
    Shang, Dongwei
    Chen, Yibo
    Chen, Chengxun
    HELIYON, 2024, 10 (03)
  • [47] Addition of berberine to formulated feed changes the glucose utilisation, intestinal microbiota and serum metabolites of Largemouth bass (Micropterus salmoides)
    Xia, Yun
    Wang, Guangjun
    Yu, Ermeng
    Tian, Jingjing
    Li, Zhifei
    Zhang, Kai
    Gong, Wangbao
    Xie, Jun
    AQUACULTURE REPORTS, 2022, 23
  • [48] Development and validation of a species- and gene-specific molecular biomarker:: Vitellogenin mRNA in largemouth bass (Micropterus salmoides)
    Bowman, CJ
    Denslow, ND
    ECOTOXICOLOGY, 1999, 8 (05) : 399 - 416
  • [49] Molecular structure of the largemouth bass (Micropterus salmoides) Myf5 gene and its effect on skeletal muscle growth
    Guo, Yuhan
    Bai, Junjie
    Chang, Ouqin
    Lao, Haihua
    Ye, Xing
    Luo, Jianren
    MOLECULAR BIOLOGY REPORTS, 2009, 36 (06) : 1497 - 1504
  • [50] Gonad metabolomics and blood biochemical analysis reveal differences associated with testicular oocytes in wild largemouth bass (Micropterus salmoides)
    Urich, Matthew L.
    Henderson, W. Matthew
    MacLeod, Alexander H.
    Yonkos, Lance T.
    Bringolf, Robert B.
    COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY B-BIOCHEMISTRY & MOLECULAR BIOLOGY, 2020, 250