Toxic Effects and Mechanisms of Silver and Zinc Oxide Nanoparticles on Zebrafish Embryos in Aquatic Ecosystems

被引:32
作者
Lee, Yen-Ling [1 ,2 ]
Shih, Yung-Sheng [1 ]
Chen, Zi-Yu [1 ]
Cheng, Fong-Yu [3 ]
Lu, Jing-Yu [1 ]
Wu, Yuan-Hua [4 ]
Wang, Ying-Jan [1 ,5 ]
机构
[1] Natl Cheng Kung Univ, Coll Med, Dept Environm & Occupat Hlth, Tainan 70428, Taiwan
[2] Minist Hlth & Welf, Dept Oncol, Tainan Hosp, Tainan 70101, Taiwan
[3] Chinese Culture Univ, Dept Chem, Taipei 11114, Taiwan
[4] Natl Cheng Kung Univ, Natl Cheng Kung Univ Hosp, Coll Med, Dept Oncol, Tainan 70428, Taiwan
[5] China Med Univ, China Med Univ Hosp, Dept Med Res, Taichung 40402, Taiwan
关键词
silver nanoparticles; zinc oxide nanoparticles; developmental toxicity; reactive oxidative stress; apoptosis; autophagy; TITANIUM-DIOXIDE NANOPARTICLES; NATURAL ORGANIC-MATTER; AGGREGATION; NANOMATERIALS; CYTOTOXICITY; DISSOLUTION; AUTOPHAGY; STABILITY; STRESS;
D O I
10.3390/nano12040717
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The global application of engineered nanomaterials and nanoparticles (ENPs) in commercial products, industry, and medical fields has raised some concerns about their safety. These nanoparticles may gain access into rivers and marine environments through industrial or household wastewater discharge and thereby affect the ecosystem. In this study, we investigated the effects of silver nanoparticles (AgNPs) and zinc oxide nanoparticles (ZnONPs) on zebrafish embryos in aquatic environments. We aimed to characterize the AgNP and ZnONP aggregates in natural waters, such as lakes, reservoirs, and rivers, and to determine whether they are toxic to developing zebrafish embryos. Different toxic effects and mechanisms were investigated by measuring the survival rate, hatching rate, body length, reactive oxidative stress (ROS) level, apoptosis, and autophagy. Spiking AgNPs or ZnONPs into natural water samples led to significant acute toxicity to zebrafish embryos, whereas the level of acute toxicity was relatively low when compared to Milli-Q (MQ) water, indicating the interaction and transformation of AgNPs or ZnONPs with complex components in a water environment that led to reduced toxicity. ZnONPs, but not AgNPs, triggered a significant delay of embryo hatching. Zebrafish embryos exposed to filtered natural water spiked with AgNPs or ZnONPs exhibited increased ROS levels, apoptosis, and lysosomal activity, an indicator of autophagy. Since autophagy is considered as an early indicator of ENP interactions with cells and has been recognized as an important mechanism of ENP-induced toxicity, developing a transgenic zebrafish system to detect ENP-induced autophagy may be an ideal strategy for predicting possible ecotoxicity that can be applied in the future for the risk assessment of ENPs.
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页数:18
相关论文
共 49 条
[1]   Transformation pathways and fate of engineered nanoparticles (ENPs) in distinct interactive environmental compartments: A review [J].
Abbas, Qumber ;
Yousaf, Balal ;
Amina ;
Ali, Muhammad Ubaid ;
Munir, Mehr Ahmed Mujtaba ;
El-Naggar, Ali ;
Rinklebe, Joerg ;
Naushad, Mu .
ENVIRONMENT INTERNATIONAL, 2020, 138
[2]   Persistence of commercial nanoscaled zero-valent iron (nZVI) and by-products [J].
Adeleye, Adeyemi S. ;
Keller, Arturo A. ;
Miller, Robert J. ;
Lenihan, Hunter S. .
JOURNAL OF NANOPARTICLE RESEARCH, 2013, 15 (01)
[3]   A systematic review on silver nanoparticles-induced cytotoxicity: Physicochemical properties and perspectives [J].
Akter, Mahmuda ;
Sikder, Md. Tajuddin ;
Rahman, Md. Mostafizur ;
Ullah, A. K. M. Atique ;
Hossain, Kaniz Fatima Binte ;
Banik, Subrata ;
Hosokawa, Toshiyuki ;
Saito, Takeshi ;
Kurasaki, Masaaki .
JOURNAL OF ADVANCED RESEARCH, 2018, 9 :1-16
[4]   Zinc Oxide Nanoparticles Induced Oxidative DNA Damage, Inflammation and Apoptosis in Rat's Brain after Oral Exposure [J].
Attia, Hala ;
Nounou, Howaida ;
Shalaby, Manal .
TOXICS, 2018, 6 (02)
[5]   Behavior of engineered nanoparticles in aquatic environmental samples: Current status and challenges [J].
Bathi, Jejal Reddy ;
Moazeni, Faegheh ;
Upadhyayula, Venkata K. K. ;
Chowdhury, Indranil ;
Palchoudhury, Soubantika ;
Potts, Gretchen E. ;
Gadhamshetty, Venkataramana .
SCIENCE OF THE TOTAL ENVIRONMENT, 2021, 793
[6]   Fate and Risks of Nanomaterials in Aquatic and Terrestrial Environments [J].
Batley, Graeme E. ;
Kirby, Jason K. ;
McLaughlin, Michael J. .
ACCOUNTS OF CHEMICAL RESEARCH, 2013, 46 (03) :854-862
[7]  
Bind V, 2019, MOJ TOXICOL, V5, P66, DOI 10.15406/mojt.2019.05.00155
[8]   Nanoparticles in the environment: where do we come from, where do we go to? [J].
Bundschuh, Mirco ;
Filser, Juliane ;
Luderwald, Simon ;
Mckee, Moira S. ;
Metreveli, George ;
Schaumann, Gabriele E. ;
Schulz, Ralf ;
Wagner, Stephan .
ENVIRONMENTAL SCIENCES EUROPE, 2018, 30
[9]   Zebrafish: A complete animal model to enumerate the nanoparticle toxicity [J].
Chakraborty, Chiranjib ;
Sharma, Ashish Ranjan ;
Sharma, Garima ;
Lee, Sang-Soo .
JOURNAL OF NANOBIOTECHNOLOGY, 2016, 14
[10]   Modulation of Innate Immune Toxicity by Silver Nanoparticle Exposure and the Preventive Effects of Pterostilbene [J].
Chen, Rong-Jane ;
Huang, Chiao-Ching ;
Pranata, Rosita ;
Lee, Yu-Hsuan ;
Chen, Yu-Ying ;
Wu, Yuan-Hua ;
Wang, Ying-Jan .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (05) :1-19