Detection of polystyrene nanoplastics in biological samples based on the solvatochromic properties of Nile red: application in Hydra attenuata exposed to nanoplastics

被引:43
作者
Gagne, Francois [1 ]
Auclair, Joelle [1 ]
Quinn, Brian [2 ]
机构
[1] Environm & Climate Change Canada, Aquat Contaminant Res Div, Montreal, PQ, Canada
[2] Univ West Scotland, Sch Hlth & Life Sci, Paisley PA1 2BE, Renfrew, Scotland
关键词
Polystyrene; Nanoplastic; Nile re; Fluorescence; Detection; QUANTIFICATION;
D O I
10.1007/s11356-019-06501-3
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The release of nanoplastics (NP) from the weathering of microplastics is a major concern for the environment. Methods for the detection of NP in biological tissues are urgently needed because of their ability to penetrate not only in tissues but also in cells. A simple fluorescence-based methodology for the detection of polystyrene NP in biological tissues is proposed using the solvatochromic properties of Nile red. Although NPs alone increased somewhat Nile red fluorescence, a characteristic hypsochromic shift in the emission spectra was found when the dye and NP were incubated with subcellular tissue fraction. To explain this, the probe and NPs (50 and 100 nm) were prepared in the presence of increasing concentrations of two detergents (Tween-20, Triton X-100) as a proxy to phospholipids. The data revealed that both detergents readily increased fluorescence values when added to the NP and Nile red. The addition of NPs in tissue extracts blue-shifted further the emission spectra to 623 nm from the normal Nile red-lipid peak at 660 nm. The fluorescence intensity was proportional to the NP concentration. A methodology is thus proposed for the detection of NPs in laboratory-exposed organisms based on the solvatochromic properties of Nile red. The methodology was used to detect the presence of NP and changes in polar lipid contents in Hydra attenuata exposed to polystyrene NP.
引用
收藏
页码:33524 / 33531
页数:8
相关论文
共 30 条
[11]  
Gagne F, 2018, J ANAL TOXICOL APPL, V1, P1
[12]  
Gagne F, 2019, CURRR TOP TOXICOL, V15, P43
[13]   Current opinion: What is a nanoplastic? [J].
Gigault, Julien ;
ter Halle, Alexandra ;
Baudrimont, Magalie ;
Pascal, Pierre-Yves ;
Gauffre, Fabienne ;
Thuy-Linh Phi ;
El Hadri, Hind ;
Grassl, Bruno ;
Reynaud, Stephanie .
ENVIRONMENTAL POLLUTION, 2018, 235 :1030-1034
[14]  
GREENSPAN P, 1985, J LIPID RES, V26, P781
[15]   NILE RED - A SELECTIVE FLUORESCENT STAIN FOR INTRACELLULAR LIPID DROPLETS [J].
GREENSPAN, P ;
MAYER, EP ;
FOWLER, SD .
JOURNAL OF CELL BIOLOGY, 1985, 100 (03) :965-973
[16]   Compounds altering fat storage in Daphnia magna [J].
Jordao, Rita ;
Garreta, Elba ;
Campos, Bruno ;
Lemos, Marco F. L. ;
Soares, Amadeu M. V. M. ;
Tauler, Roma ;
Barata, Carlos .
SCIENCE OF THE TOTAL ENVIRONMENT, 2016, 545 :127-136
[17]   Characterisation of nanoplastics during the degradation of polystyrene [J].
Lambert, Scott ;
Wagner, Martin .
CHEMOSPHERE, 2016, 145 :265-268
[18]   Unmodified cadmium telluride quantum dots induce reactive oxygen species formation leading to multiple organelle damage and cell death [J].
Lovric, J ;
Cho, SJ ;
Winnik, FM ;
Maysinger, D .
CHEMISTRY & BIOLOGY, 2005, 12 (11) :1227-1234
[19]   Ratiometric imaging of gastrodermal lipid bodies in coral-dinoflagellate endosymbiosis [J].
Luo, Y. -J. ;
Wang, L. -H. ;
Chen, W. -N. U. ;
Peng, S. -E. ;
Tzen, J. T. -C. ;
Hsiao, Y. -Y. ;
Huang, H. -J. ;
Fang, L. -S. ;
Chen, C. -S. .
CORAL REEFS, 2009, 28 (01) :289-301
[20]   A rapid-screening approach to detect and quantify microplastics based on fluorescent tagging with Nile Red [J].
Maes, Thomas ;
Jessop, Rebecca ;
Wellner, Nikolaus ;
Haupt, Karsten ;
Mayes, Andrew G. .
SCIENTIFIC REPORTS, 2017, 7