Mitochondrial response and resilience to anthropogenic chemicals during embryonic development

被引:5
作者
Babich, Remy [1 ]
Hamlin, Heather [1 ]
Thayer, LeeAnne [1 ]
Dorr, Madeline [2 ]
Wei, Zheng [2 ]
Neilson, Andrew [3 ]
Jayasundara, Nishad [1 ]
机构
[1] Univ Maine, Sch Marine Sci, 5751 Murray Hall, Orono, ME 04469 USA
[2] Univ Maine, Dept Math & Stat, Orono, ME 04469 USA
[3] Agilent Technol, Lexington, MA 02421 USA
来源
COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY C-TOXICOLOGY & PHARMACOLOGY | 2020年 / 233卷
关键词
Developmental toxicity; Environmental contaminants; Cellular responses; Aquatic organisms; Bioenergetics; ZEBRAFISH; DYNAMICS; EXPOSURE; LIFE;
D O I
10.1016/j.cbpc.2020.108759
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Mitochondria are integral to maintaining cellular homeostasis. Optimum mitochondrial function is critical during embryonic development, as they play a key role in early signaling cascades and epigenetic programming, in addition to sustaining an adequate energy production. Mitochondria are sensitive targets of environmental toxins, potentially even at levels considered safe under current regulatory limits. Most mitochondrial analyses have focused only on chemical exposure effects in vitro or in isolated mitochondria. However, comparatively little is known about mitochondrial effects of chemical exposure during vertebrate embryogenesis, especially during the recovery phase following a chemical insult. Here, we used the zebrafish (Danio rerio), in a 96-well plate system, to examine mitochondrial effects of 24 chemicals including pharmaceuticals, industrial chemicals, and agrochemicals. We used oxygen consumption rate (OCR) during embryogenesis as a proxy for mitochondrial function. Embryonic OCR (eOCR) was measured in clean egg water immediately following 24 h of chemical exposure and subsequently for an additional 8 h. Each chemical, dependent upon the concentration, resulted in a unique eOCR response profile. While some eOCR effects were persistent or recoverable over time, some effects were only detected several hours after being removed from the exposure. Non-monotonic dose response effects as well as mitochondrial hormesis were also detected following exposure to some chemicals. Collectively, our study shows that mitochondrial response to chemicals are highly dynamic and warrant careful consideration when determining mitochondrial toxicity of a given chemical.
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页数:9
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共 35 条
[1]   Mitochondrial dysfunction and oxidative stress in metabolic disorders - A step towards mitochondria based therapeutic strategies [J].
Bhatti, Jasvinder Singh ;
Bhatti, Gurjit Kaur ;
Reddy, P. Hemachandra .
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR BASIS OF DISEASE, 2017, 1863 (05) :1066-1077
[2]   Pharmacologic modeling of primary mitochondrial respiratory chain dysfunction in zebrafish [J].
Byrnes, James ;
Ganetzky, Rebecca ;
Lightfoot, Richard ;
Tzeng, Michael ;
Nakamaru-Ogiso, Eiko ;
Seiler, Christoph ;
Falk, Marni J. .
NEUROCHEMISTRY INTERNATIONAL, 2018, 117 :23-34
[3]   Epigenetic effects of low perinatal doses of flame retardant BDE-47 on mitochondrial and nuclear genes in rat offspring [J].
Byun, Hyang-Min ;
Benachour, Nora ;
Zalko, Daniel ;
Frisardi, Maria Chiara ;
Colicino, Elena ;
Takser, Larissa ;
Baccarelli, Andrea A. .
TOXICOLOGY, 2015, 328 :152-159
[4]   Alterations in mitochondrial dynamics induced by tebufenpyrad and pyridaben in a dopaminergic neuronal cell culture model [J].
Charli, Adhithiya ;
Jin, Huajun ;
Anantharam, Vellareddy ;
Kanthasamy, Arthi ;
Kanthasamy, Anumantha G. .
NEUROTOXICOLOGY, 2016, 53 :302-313
[5]   Oxidative stress, cell cycle arrest, DNA damage and apoptosis in adult zebrafish (Danio rerio) induced by tris(1,3-dichloro-2-propyl) phosphate [J].
Chen, Hanyan ;
Wang, Pingping ;
Du, Zhongkun ;
Wang, Guowei ;
Gao, Shixiang .
AQUATIC TOXICOLOGY, 2018, 194 :37-45
[6]   A ROS-mediated mitochondrial pathway and Nrf2 pathway activation are involved in BDE-47 induced apoptosis in Neuro-2a cells [J].
Chen, Hongmei ;
Tang, Xuexi ;
Zhou, Bin ;
Zhou, Zhongyuan ;
Xu, Ningning ;
Wang, You .
CHEMOSPHERE, 2017, 184 :679-686
[7]   Elevated nitrate alters the metabolic activity of embryonic zebrafish [J].
Conlin, Sarah M. ;
Tudor, M. Scarlett ;
Shim, Juyoung ;
Gosse, Julie A. ;
Neilson, Andrew ;
Hamlin, Heather J. .
ENVIRONMENTAL POLLUTION, 2018, 235 :180-185
[8]   Early-Life Benzo[a]Pyrene Exposure Causes Neurodegenerative Syndromes in Adult Zebrafish (Danio rerio) and the Mechanism Involved [J].
Gao, Dongxu ;
Wang, Chonggang ;
Xi, Zhihui ;
Zhou, Yixi ;
Wang, Yuanchuan ;
Zuo, Zhenghong .
TOXICOLOGICAL SCIENCES, 2017, 157 (01) :74-84
[9]   Advancements in zebrafish applications for 21st century toxicology [J].
Garcia, Gloria R. ;
Noyes, Pamela D. ;
Tanguay, Robert L. .
PHARMACOLOGY & THERAPEUTICS, 2016, 161 :11-21
[10]   Detection of Poly- and Perfluoroalkyl Substances (PFASs) in US Drinking Water Linked to Industrial Sites, Military Fire Training Areas, and Wastewater Treatment Plants [J].
Hu, Xindi C. ;
Andrews, David Q. ;
Lindstrom, Andrew B. ;
Bruton, Thomas A. ;
Schaider, Laurel A. ;
Grandjean, Philippe ;
Lohmann, Rainer ;
Carignan, Courtney C. ;
Blum, Arlene ;
Balan, Simona A. ;
Higgins, Christopher P. ;
Sunderland, Elsie M. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY LETTERS, 2016, 3 (10) :344-350