Literature DB >> 18461442

Environmental behavior and ecotoxicity of engineered nanoparticles to algae, plants, and fungi.

Enrique Navarro1, Anders Baun, Renata Behra, Nanna B Hartmann, Juliane Filser, Ai-Jun Miao, Antonietta Quigg, Peter H Santschi, Laura Sigg.   

Abstract

Developments in nanotechnology are leading to a rapid proliferation of new materials that are likely to become a source of engineered nanoparticles (ENPs) to the environment, where their possible ecotoxicological impacts remain unknown. The surface properties of ENPs are of essential importance for their aggregation behavior, and thus for their mobility in aquatic and terrestrial systems and for their interactions with algae, plants and, fungi. Interactions of ENPs with natural organic matter have to be considered as well, as those will alter the ENPs aggregation behavior in surface waters or in soils. Cells of plants, algae, and fungi possess cell walls that constitute a primary site for interaction and a barrier for the entrance of ENPs. Mechanisms allowing ENPs to pass through cell walls and membranes are as yet poorly understood. Inside cells, ENPs might directly provoke alterations of membranes and other cell structures and molecules, as well as protective mechanisms. Indirect effects of ENPs depend on their chemical and physical properties and may include physical restraints (clogging effects), solubilization of toxic ENP compounds, or production of reactive oxygen species. Many questions regarding the bioavailability of ENPs, their uptake by algae, plants, and fungi and the toxicity mechanisms remain to be elucidated.

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Year:  2008        PMID: 18461442     DOI: 10.1007/s10646-008-0214-0

Source DB:  PubMed          Journal:  Ecotoxicology        ISSN: 0963-9292            Impact factor:   2.823


  77 in total

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3.  Flocculation of hematite particles by a comparatively large rigid polysaccharide: schizophyllan.

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4.  Starched carbon nanotubes.

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5.  Influence of surface potential on aggregation and transport of titania nanoparticles.

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Journal:  Environ Sci Technol       Date:  2006-12-15       Impact factor: 9.028

6.  Tolerance of Oocystis nephrocytioides to copper: intracellular distribution and extracellular complexation of copper.

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7.  Antimicrobial effects of silver nanoparticles.

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Review 8.  Plant responses to abiotic stresses: heavy metal-induced oxidative stress and protection by mycorrhization.

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9.  Forming biocompatible and nonaggregated nanocrystals in water using amphiphilic polymers.

Authors:  William W Yu; Emmanuel Chang; Joshua C Falkner; Junyan Zhang; Ali M Al-Somali; Christie M Sayes; Judah Johns; Rebekah Drezek; Vicki L Colvin
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Review 10.  Nanotoxicology: an emerging discipline evolving from studies of ultrafine particles.

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  159 in total

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2.  Influence of Alpha and Gamma-Iron Oxide Nanoparticles on Marine Microalgae Species.

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3.  The reduced bioavailability of copper by nano-TiO₂ attenuates the toxicity to Microcystis aeruginosa.

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Journal:  Environ Sci Pollut Res Int       Date:  2015-04-23       Impact factor: 4.223

4.  Role of bulk and Nanosized SiO2 to overcome salt stress during Fenugreek germination (Trigonella foenum- graceum L.).

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5.  Evaluation of stress effects of copper oxide nanoparticles in Brassica napus L. seedlings.

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Journal:  3 Biotech       Date:  2017-08-30       Impact factor: 2.406

6.  Effects of Cr2O3 nanoparticles on the chlorophyll fluorescence and chloroplast ultrastructure of soybean (Glycine max).

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7.  Exposure of juvenile Danio rerio to aged TiO₂ nanomaterial from sunscreen.

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Review 8.  Toxicity of engineered nanoparticles in the environment.

Authors:  Melissa A Maurer-Jones; Ian L Gunsolus; Catherine J Murphy; Christy L Haynes
Journal:  Anal Chem       Date:  2013-03-07       Impact factor: 6.986

9.  Combined biocidal action of silver nanoparticles and ions against Chlorococcales (Scenedesmus quadricauda, Chlorella vulgaris) and filamentous algae (Klebsormidium sp.).

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10.  Toxicity of quantum dots and cadmium salt to Caenorhabditis elegans after multigenerational exposure.

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