Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5764124 | Aquatic Toxicology | 2017 | 45 Pages |
Abstract
The ever-growing production of engineered nanoparticles (NPs) for use in many agricultural, commercial, consumer, and industrial applications will lead to their accidental or intentional release into the environment. Potential routes of environmental exposure include manufacturing or transport spills, disposal of NPâcontaining products down the drain and/or in landfills, as well as direct usage on agricultural land. Therefore, NPs will inevitably contaminate aquatic environments and interact with resident organisms. However, there is limited information regarding the mechanisms that regulate NP transport into fish from the environment. Thus, our primary objective was to elucidate the mechanism(s) underlying cellular uptake and intracellular fate of 3-9Â nm poly (acrylic acid) NPs loaded with the fluorescent dye Nile red using a rainbow trout (Oncorhynchus mykiss) gill epithelial cell line (RTgillâW1). In vitro measurements with NPâtreated RTgill-W1 cells were carried out using a combination of laser scanning confocal microscopy, flow cytometry, fluorescent biomarkers (transferrin, cholera toxin B subunit, and dextran), endocytosis inhibitors (chlorpromazine, genistein, and wortmannin), and stains (4â², 6âdiamidino-2-phenylindole, Hoechst 33342, CellMask Deep Red, and LysoTracker Yellow). Clathrin-mediated endocytosis (CME), caveolaeâmediated endocytosis and macropinocytosis pathways were active in RTgillâW1 cells, and these pathways were exploited by the non-cytotoxic NPs to enter these cells. We have demonstrated that NP uptake by RTgillâW1 cells was impeded when clathrin-coated pit formation was blocked by chlorpromazine. Furthermore, colocalization analysis revealed a moderate positive relationship between NPs and LysoTracker Yellow-positive lysosomal compartments indicating that CME was the dominant operative mechanism involved in NP internalization by RTgill-W1 cells. Overall, our results clearly show that fish gill epithelial cells internalized NPs via energyâdependent endocytotic processes. This study enhances our understanding of complex NPâcell interactions and the results obtained in vitro imply a potential risk to aquatic organisms.
Keywords
CTBddH2OMacropinocytosis4′ 6-diamidino-2-phenylindoleGTPaseAnnexin V-FITCCPZCaveolae-mediated endocytosisDAPIPBS/BSATransferrinRTgill-W1PBSDEXFBSDMSOdouble-distilled waterCMEEndocytosisClathrin-mediated endocytosisInternalizationDextranDimethyl sulfoxideEx/Emfetal bovine serumPhosphate buffered salineLysosomeGenisteinFishNanotoxicologyNanoparticleNile Redwortmanninchlorpromazinecholera toxin B subunitColocalizationguanosine triphosphatase
Related Topics
Life Sciences
Agricultural and Biological Sciences
Aquatic Science
Authors
Lindsey C. Felix, Van A. Ortega, Greg G. Goss,