Visible-light reduced silver nanoparticles' toxicity in Allium cepa test system

被引:22
作者
Souza, Irisdoris R. [1 ]
Silva, Lucas R. [1 ]
Fernandes, Leticia S. P. [2 ]
Salgado, Lilian D. [2 ]
Silva de Assis, Helena C. [2 ]
Firak, Daniele S. [3 ]
Bach, Larissa [3 ]
Santos-Filho, Ronaldo [1 ]
Voigt, Carmen L. [5 ]
Barros, Ariana C. [4 ]
Peralta-Zamora, Patricio [3 ]
Mattoso, Ney [6 ]
Franco, Celia Regina C. [7 ]
Soares Medeiros, Lia C. [8 ]
Marcon, Bruna H. [8 ]
Cestari, Marta M. [1 ]
Sant'Anna-Santos, Bruno F. [4 ]
Leme, Daniela M. [1 ,9 ]
机构
[1] Fed Univ Parana UFPR, Dept Genet, Curitiba, PR, Brazil
[2] Fed Univ Parana UFPR, Dept Pharmacol, Curitiba, PR, Brazil
[3] Fed Univ Parana UFPR, Dept Chem, Curitiba, PR, Brazil
[4] Fed Univ Parana UFPR, Dept Bot, Curitiba, PR, Brazil
[5] Univ Estadual Ponta Grossa, Dept Chem, Ponta Grosso, PR, Brazil
[6] Fed Univ Parana UFPR, Dept Phys, Curitiba, PR, Brazil
[7] Fed Univ Parana UFPR, Dept Cellular & Mol Biol, Curitiba, PR, Brazil
[8] Fiocruz MS, Carlos Chagas Inst, Curitiba, PR, Brazil
[9] Natl Inst Alternat Technol Detect Toxicol Evaluat, Inst Chem, Araraquara, SP, Brazil
关键词
Uncoated silver nanoparticles; Coated (PVP) silver nanoparticles; Aggregation; Higher plant; DNA damage; TITANIUM-DIOXIDE NANOPARTICLES; SURFACE-CHARGE; CITRATE; IMPACT; IONS; PVP; CYTOTOXICITY; GENOTOXICITY; AGGREGATION; REDUCTION;
D O I
10.1016/j.envpol.2019.113551
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Silver nanoparticles (AgNPs) are widely used in consumer products due to their antibacterial property; however, their potential toxicity and release into the environment raises concern. Based on the limited understanding of AgNPs aggregation behavior, this study aimed to investigate the toxicity of uncoated (uc-AgNP) and coated with polyvinylpyrrolidone (PVP-AgNP), at low concentrations (0.5-100 ng/mL), under dark and visible-light exposure, using a plant test system. We exposed Allium cepa seeds to both types of AgNPs for 4-5 days to evaluate several toxicity endpoints. AgNPs did not cause acute toxicity (i.e., inhibition of seed germination and root development), but caused genotoxicity and biochemical alterations in oxidative stress parameters (lipid peroxidation) and activities of antioxidant enzymes (superoxide dismutase and catalase) in light and dark conditions. However, the light exposure decreased the rate of chromosomal aberration and micronuclei up to 5.60x in uc-AgNP and 2.01x in PVP-AgNP, and 2.69x in uc-AgNP and 3.70x in PVP-AgNP, respectively. Thus, light exposure reduced the overall genotoxicity of these AgNPs. In addition, mitotic index alterations and morphoanatomical changes in meri-stematic cells were observed only in the dark condition at the highest concentrations, demonstrating that light also reduces AgNPs cytotoxicity. The light-dependent aggregation of AgNPs may have reduced toxicity by reducing the uptake of these NPs by the cells. Our findings demonstrate that AgNPs can be genotoxic, cytotoxic and induce morphoanatomical and biochemical changes in A. cepa roots even at low concentrations, and that visible-light alters their aggregation state, and decreases their toxicity. We suggest that visible light can be an alternative treatment to remediate AgNP residues, minimizing their toxicity and environmental risks. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页数:11
相关论文
共 77 条
[1]  
Aebi H., 1984, METHOD ENZYMOL, P673
[2]   Effect of Gold Nanoparticle Aggregation on Cell Uptake and Toxicity [J].
Albanese, Alexandre ;
Chan, Warren C. W. .
ACS NANO, 2011, 5 (07) :5478-5489
[3]   Effect of Nanoparticle Surface Charge at the Plasma Membrane and Beyond [J].
Arvizo, Rochelle R. ;
Miranda, Oscar R. ;
Thompson, Michael A. ;
Pabelick, Christina M. ;
Bhattacharya, Resham ;
Robertson, J. David ;
Rotello, Vincent M. ;
Prakash, Y. S. ;
Mukherjee, Priyabrata .
NANO LETTERS, 2010, 10 (07) :2543-2548
[4]   Toxicity of silver nanoparticles in zebrafish models [J].
Asharani, P. V. ;
Wu, Yi Lian ;
Gong, Zhiyuan ;
Valiyaveettil, Suresh .
NANOTECHNOLOGY, 2008, 19 (25)
[5]   Cytotoxicity and Genotoxicity of Silver Nanoparticles in Human Cells [J].
AshaRani, P. V. ;
Mun, Grace Low Kah ;
Hande, Manoor Prakash ;
Valiyaveettil, Suresh .
ACS NANO, 2009, 3 (02) :279-290
[6]   Lipid peroxidation: control of cell proliferation, cell differentiation and cell death [J].
Barrera, Giuseppina ;
Pizzimenti, Stefania ;
Dianzani, Mario Umberto .
MOLECULAR ASPECTS OF MEDICINE, 2008, 29 (1-2) :1-8
[7]   Nanoparticle silver released into water from commercially available sock fabrics [J].
Benn, Troy M. ;
Westerhoff, Paul .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2008, 42 (11) :4133-4139
[8]   Reactive oxygen species and heavy metal stress in plants: Impact on the cell wall and secondary metabolism [J].
Berni, Roberto ;
Luyckx, Marie ;
Xu, Xuan ;
Legay, Sylvain ;
Sergeant, Kjell ;
Hausman, Jean-Francois ;
Lutts, Stanley ;
Cai, Giampiero ;
Guerriero, Gea .
ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2019, 161 :98-106
[9]   A comprehensive framework for evaluating the environmental health and safety implications of engineered nanomaterials [J].
Boyes, William K. ;
Thornton, Brittany Lila M. ;
Al-Abed, Souhail R. ;
Andersen, Christian P. ;
Bouchard, Dermont C. ;
Burgess, Robert M. ;
Hubal, Elaine A. Cohen ;
Ho, Kay T. ;
Hughes, Michael F. ;
Kitchin, Kirk ;
Reichman, Jay R. ;
Rogers, Kim R. ;
Ross, Jeffrey A. ;
Rygiewicz, Paul T. ;
Scheckel, Kirk G. ;
Thai, Sheau-Fung ;
Zepp, Richard G. ;
Zucker, Robert M. .
CRITICAL REVIEWS IN TOXICOLOGY, 2017, 47 (09) :767-810
[10]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3