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Original Article

Interactions of CuO nanoparticles with the algae Chlorella pyrenoidosa: adhesion, uptake, and toxicity

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Pages 1297-1305 | Received 30 Nov 2015, Accepted 10 Jun 2016, Published online: 15 Jul 2016

References

  • Aruoja V, Dubourguier HC, Kasemets K, Kahru A. 2009. Toxicity of nanoparticles of CuO, ZnO and TiO2 to microalgae Pseudokirchneriella subcapitata. Sci Total Environ 407:1461–8
  • Baker TJ, Tyler CR, Galloway TS. 2014. Impacts of metal and metal oxide nanoparticles on marine organisms. Environ Pollut 186:257–71
  • Chen P, Powell BA, Mortimer M, Ke PC. 2012. Adaptive interactions between zinc oxide nanoparticles and Chlorella sp. Environ Sci Technol 46:12178–85
  • Collins D, Luxton T, Kumar N, Shah S, Walker VK, Shah V. 2012. Assessing the impact of copper and zinc oxide nanoparticles on soil: a field study. PLoS One 7:e42663
  • Cuevas R, Durán N, Diez MC, Tortella GR, Rubilar O. 2015. Extracellular biosynthesis of copper and copper oxide nanoparticles by Stereum hirsutum, a native white-rot fungus from Chilean forests. J Nanomater 2015:7:789089
  • Dalai S, Pakrashi S, Nirmala MJ, Chaudhri A, Chandrasekaran N, Mandal AB, Mukherjee A. 2013. Cytotoxicity of TiO2 nanoparticles and their detoxification in a freshwater system. Aquat Toxicol 38:1–11
  • Franklin NM, Stauber JL, Markich SJ, Lim RP. 2000. pH-dependent toxicity of copper and uranium to a tropical freshwater alga (Chlorella sp.). Aquat Toxicol 48:275–89
  • George S, Gardner H, Seng EK, Chang H, Wang C, Fang CHY, et al 2014. Differential effect of solar light in increasing the toxicity of silver and titanium dioxide nanoparticles to a fish cell line and zebrafish embryos. Environ Sci Technol 48:6374–82
  • Hong Y, Hu H, Xie X, Sakoda A, Sagehashi M, Li F. 2009. Gramine-induced growth inhibition, oxidative damage and antioxidant responses in freshwater cyanobacterium Microcystis aeruginosa. Aquat Toxicol 91:262–9
  • Hund-Rinke K, Simon M. 2006. Ecotoxic effect of photocatalytic active nanoparticles (TiO2) on algae and daphnids. Environ Sci Pollut Res Int 13:225–32
  • Ji J, Long Z, Lin D. 2011. Toxicity of oxide nanoparticles to the green algae Chlorella sp. Chem Eng J 170:525–30
  • Kahru A, Dubourguier HC. 2010. From ecotoxicology to nanoecotoxicology. Toxicology 269:105–19
  • Kamat JP, Devasagayam TPA, Priyadarsini KI, Mohan H. 2000. Reactive oxygen species mediated membrane damage induced by fullerene derivatives and its possible biological implications. Toxicology 155:55–61
  • Kang S, Mauter MS, Elimelech M. 2008. Physicochemical determinants of multiwalled carbon nanotube bacterial cytotoxicity. Environ Sci Technol 42:7528–34
  • Karlsson HL, Cronholm P, Gustafsson J, Moller L. 2008. Copper oxide nanoparticles are highly toxic: a comparison between metal oxide nanoparticles and carbon nanotubes. Chem Res Toxicol 21:1726–32
  • Kasemets K, Ivask A, Dubourguier H, Kahru A. 2009. Toxicity of nanoparticles of ZnO, CuO and TiO2 to yeast Saccharomyces cerevisiae. Toxicol in Vitro 23:1116–22
  • Liu Q, Chen B, Wang Q, Shi X, Xiao Z, Lin J, Fang X. 2009. Carbon nanotubes as molecular transporters for walled plant cells. Nano Lett 9:1007–10
  • Ma S, Zhou K, Yang K, Lin D. 2015. Heteroagglomeration of oxide nanoparticles with algal cells: effects of particle type, ionic strength and pH. Environ Sci Technol 49:932–9
  • Mortimer M, Gogos A, Bartolomé N, Kahru A, Bucheli TD, Slaveykova VI. 2014. Potential of hyperspectral imaging microscopy for semi-quantitative analysis of nanoparticle uptake by protozoa. Environ Sci Technol 48:8760–7
  • Nishikawa K, Yamakoshi Y, Uemura I, Tominaga N. 2003. Ultrastructural changes in Chlamydomonas acidophila (Chlorophyta) induced by heavy metals and polyphosphate metabolism. FEMS Microbiol Ecol 44:253–9
  • Park MH, Kim KH, Lee HH, Kim JS, Hwang SJ. 2010. Selective inhibitory potential of silver nanoparticles on the harmful cyanobacterium Microcystis aeruginosa. Biotechnol Lett 32:423–8
  • Peng HI, Krauss TD, Miller BL. 2010. Aging induced Ag nanoparticle rearrangement under ambient atmosphere and consequences for nanoparticle-enhanced DNA biosensing. Anal Chem 82:8664–70
  • Reddy KM, Feris K, Bell J, Wingett DG, Hanley C, Punnoose A. 2007. Selective toxicity of zinc oxide nanoparticles to prokaryotic and eukaryotic systems. Appl Phys Lett 90:213902
  • Rodgher S, Espíndola ELG, Simões FCF, Tonietto AE. 2012. Cadmium and chromium toxicity to Pseudokirchneriella subcapitata and Microcystis aeruginosa. Braz Arch Biol Technol 55:161–9
  • Schwab F, Bucheli TD, Lukhele LP, Magrez A, Nowack B, Sigg L, Knauer K. 2011. Are carbon nanotube effects on green algae caused by shading and agglomeration? Environ Sci Technol 45:6136–44
  • Serag MF, Kaji N, Gaillard C, Okamoto Y, Terasaka K, Jabasini M, et al 2011. Trafficking and subcellular localization of multiwalled carbon nanotubes in plant cells. ACS Nano 5:493–9
  • Shi Y, Sheng J, Yang F, Hu Q. 2007. Purification and identification of polysaccharide derived from Chlorella pyrenoidosa. Food Chem 103:101–5
  • Sun L, Li Y, Liu X, Jin M, Zhang L, Du Z, et al 2011. Cytotoxicity and mitochondrial damage caused by silica nanoparticles. Toxicol in Vitro 25:1619–29
  • Tan C, Lai S, Wu S, Hu S, Zhou L, Chen Y, et al 2010. Nuclear permeable ruthenium(II) β-carboline complexes induce autophagy to antagonize mitochondrial-mediated apoptosis. J Med Chem 53:7613–24
  • Thit A, Selck H, Bjerregaard HF. 2015. Toxic mechanisms of copper oxide nanoparticles in epithelial kidney cells. Toxicol in Vitro 29:1053–9
  • Trachootham D, Zhou Y, Zhang H, Demizu Y, Chen Z, Pelicano H, et al 2006. Selective killing of oncogenically transformed cells through a ROS-mediated mechanism by beta-phenylethyl isothiocyanate. Cancer Cell 10:241–52
  • von Moos N, Maillard L, Slaveykova VI. 2015. Dynamics of sub-lethal effects of nano-CuO on the microalga Chlamydomonas reinhardtii during short-term exposure. Aquat Toxicol 161:267–75
  • Wang H, Adeleye AS, Huang Y, Li F, Keller AA. 2015. Heteroaggregation of nanoparticles with biocolloids and geocolloids. Adv Colloid Interface Sci 226:24–36
  • Wang Z, Li J, Zhao J, Xing B. 2011. Toxicity and internalization of CuO nanoparticles to prokaryotic alga Microcystis aeruginosa as affected by dissolved organic matter. Environ Sci Technol 45:6032–40
  • Wang Z, Li N, Zhao J, White JC, Qu P, Xing B. 2012. CuO Nanoparticle interaction with human epithelial cells: cellular uptake, location, export and genotoxicity. Chem Res Toxicol 25:1512–21
  • Wang Z, von dem Bussche A, Kabadi PK, Kane AB, Hurt RH. 2013. Biological and environmental transformations of copper-based nanomaterials. ACS Nano 7:8715–27
  • Wong S,WY, Leung PTY, Djurišić AB, Leung KM. 2010. Toxicities of nano zinc oxide to five marine organisms: influences of aggregate size and ion solubility. Anal Bioanal Chem 396:609–18
  • Xia T, Kovochich M, Liong M, Mädler L, Gilbert B, Shi H, et al 2008. Comparison of the mechanism of toxicity of zinc oxide and cerium oxide nanoparticles based on dissolution and oxidative stress properties. ACS Nano 2:2121–34
  • Zhang S, Jiang Y, Chen CS, Creeley D, Schwehr KA, Quigg A, et al 2013. Ameliorating effects of extracellular polymeric substances excreted by Thalassiosira pseudonana on algal toxicity of CdSe quantum dots. Aquat Toxicol 126:214–23
  • Zhao J, Wang Z, Dai Y, Xing B. 2013. Mitigation of CuO nanoparticle-induced bacterial membrane damage by dissolved organic matter. Water Res 47:4169–78
  • Zhao J, Wang Z, Liu X, Xie X, Zhang K, Xing B. 2011. Distribution of CuO nanoparticles in juvenile carp (Cyprinus carpio) and their potential toxicity. J Hazard Mater 197:304–10

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