Understanding the fate and biological effects of Ag- and TiO2-nanoparticles in the environment: The quest for advanced analytics and interdisciplinary concepts

Engineered inorganic nanoparticles (EINP) from consumers' products and industrial applications, especially silver and titanium dioxide nanoparticles (NP), are emitted into the aquatic and terrestrial environments in increasing amounts. However, the current knowledge on their environmental fate...

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Published inThe Science of the total environment Vol. 535; pp. 3 - 19
Main Authors Schaumann, Gabriele E., Philippe, Allan, Bundschuh, Mirco, Metreveli, George, Klitzke, Sondra, Rakcheev, Denis, Grün, Alexandra, Kumahor, Samuel K., Kühn, Melanie, Baumann, Thomas, Lang, Friederike, Manz, Werner, Schulz, Ralf, Vogel, Hans-Jörg
Format Journal Article
LanguageEnglish
Published Netherlands Elsevier B.V 01.12.2015
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Abstract Engineered inorganic nanoparticles (EINP) from consumers' products and industrial applications, especially silver and titanium dioxide nanoparticles (NP), are emitted into the aquatic and terrestrial environments in increasing amounts. However, the current knowledge on their environmental fate and biological effects is diverse and renders reliable predictions complicated. This review critically evaluates existing knowledge on colloidal aging mechanisms, biological functioning and transport of Ag NP and TiO2 NP in water and soil and it discusses challenges for concepts, experimental approaches and analytical methods in order to obtain a comprehensive understanding of the processes linking NP fate and effects. Ag NP undergo dissolution and oxidation with Ag2S as a thermodynamically determined endpoint. Nonetheless, Ag NP also undergo colloidal transformations in the nanoparticulate state and may act as carriers for other substances. Ag NP and TiO2 NP can have adverse biological effects on organisms. Whereas Ag NP reveal higher colloidal stability and mobility, the efficiency of NOM as a stabilizing agent is greater towards TiO2 NP than towards Ag NP, and multivalent cations can dominate the colloidal behavior over NOM. Many of the past analytical obstacles have been overcome just recently. Single particle ICP-MS based methods in combination with field flow fractionation techniques and hydrodynamic chromatography have the potential to fill the gaps currently hampering a comprehensive understanding of fate and effects also at a low field relevant concentrations. These analytical developments will allow for mechanistically orientated research and transfer to a larger set of EINP. This includes separating processes driven by NP specific properties and bulk chemical properties, categorization of effect-triggering pathways directing the EINP effects towards specific recipients, and identification of dominant environmental parameters triggering fate and effect of EINP in specific ecosystems (e.g. soil, lake, or riverine systems). •Mechanisms of NOM sorption to NP and their effects on aggregation are largely unknown.•Masking, catching and dissolution processes determine nanoparticle fate & effect.•Assessment of environmental impacts on NP fate and effects needs further studies.•Single particle analytics enlighten nanoparticle speciation in the environment.•Still an analytical challenge: nanoparticle characterization in complex matrices
AbstractList Engineered inorganic nanoparticles (EINP) from consumers' products and industrial applications, especially silver and titanium dioxide nanoparticles (NP), are emitted into the aquatic and terrestrial environments in increasing amounts. However, the current knowledge on their environmental fate and biological effects is diverse and renders reliable predictions complicated. This review critically evaluates existing knowledge on colloidal aging mechanisms, biological functioning and transport of Ag NP and TiO2 NP in water and soil and it discusses challenges for concepts, experimental approaches and analytical methods in order to obtain a comprehensive understanding of the processes linking NP fate and effects. Ag NP undergo dissolution and oxidation with Ag2S as a thermodynamically determined endpoint. Nonetheless, Ag NP also undergo colloidal transformations in the nanoparticulate state and may act as carriers for other substances. Ag NP and TiO2 NP can have adverse biological effects on organisms. Whereas Ag NP reveal higher colloidal stability and mobility, the efficiency of NOM as a stabilizing agent is greater towards TiO2 NP than towards Ag NP, and multivalent cations can dominate the colloidal behavior over NOM. Many of the past analytical obstacles have been overcome just recently. Single particle ICP-MS based methods in combination with field flow fractionation techniques and hydrodynamic chromatography have the potential to fill the gaps currently hampering a comprehensive understanding of fate and effects also at a low field relevant concentrations. These analytical developments will allow for mechanistically orientated research and transfer to a larger set of EINP. This includes separating processes driven by NP specific properties and bulk chemical properties, categorization of effect-triggering pathways directing the EINP effects towards specific recipients, and identification of dominant environmental parameters triggering fate and effect of EINP in specific ecosystems (e.g. soil, lake, or riverine systems).
Engineered inorganic nanoparticles (EINP) from consumers' products and industrial applications, especially silver and titanium dioxide nanoparticles (NP), are emitted into the aquatic and terrestrial environments in increasing amounts. However, the current knowledge on their environmental fate and biological effects is diverse and renders reliable predictions complicated. This review critically evaluates existing knowledge on colloidal aging mechanisms, biological functioning and transport of Ag NP and TiO2 NP in water and soil and it discusses challenges for concepts, experimental approaches and analytical methods in order to obtain a comprehensive understanding of the processes linking NP fate and effects.Ag NP undergo dissolution and oxidation with Ag2S as a thermodynamically determined endpoint. Nonetheless, Ag NP also undergo colloidal transformations in the nanoparticulate state and may act as carriers for other substances. Ag NP and TiO2 NP can have adverse biological effects on organisms. Whereas Ag NP reveal higher colloidal stability and mobility, the efficiency of NOM as a stabilizing agent is greater towards TiO2 NP than towards Ag NP, and multivalent cations can dominate the colloidal behavior over NOM. Many of the past analytical obstacles have been overcome just recently. Single particle ICP-MS based methods in combination with field flow fractionation techniques and hydrodynamic chromatography have the potential to fill the gaps currently hampering a comprehensive understanding of fate and effects also at a low field relevant concentrations.These analytical developments will allow for mechanistically orientated research and transfer to a larger set of EINP. This includes separating processes driven by NP specific properties and bulk chemical properties, categorization of effect-triggering pathways directing the EINP effects towards specific recipients, and identification of dominant environmental parameters triggering fate and effect of EINP in specific ecosystems (e.g. soil, lake, or riverine systems). (C) 2014 Elsevier B.V. All rights reserved.
Engineered inorganic nanoparticles (EINP) from consumers' products and industrial applications, especially silver and titanium dioxide nanoparticles (NP), are emitted into the aquatic and terrestrial environments in increasing amounts. However, the current knowledge on their environmental fate and biological effects is diverse and renders reliable predictions complicated. This review critically evaluates existing knowledge on colloidal aging mechanisms, biological functioning and transport of Ag NP and TiO2 NP in water and soil and it discusses challenges for concepts, experimental approaches and analytical methods in order to obtain a comprehensive understanding of the processes linking NP fate and effects. Ag NP undergo dissolution and oxidation with Ag2S as a thermodynamically determined endpoint. Nonetheless, Ag NP also undergo colloidal transformations in the nanoparticulate state and may act as carriers for other substances. Ag NP and TiO2 NP can have adverse biological effects on organisms. Whereas Ag NP reveal higher colloidal stability and mobility, the efficiency of NOM as a stabilizing agent is greater towards TiO2 NP than towards Ag NP, and multivalent cations can dominate the colloidal behavior over NOM. Many of the past analytical obstacles have been overcome just recently. Single particle ICP-MS based methods in combination with field flow fractionation techniques and hydrodynamic chromatography have the potential to fill the gaps currently hampering a comprehensive understanding of fate and effects also at a low field relevant concentrations. These analytical developments will allow for mechanistically orientated research and transfer to a larger set of EINP. This includes separating processes driven by NP specific properties and bulk chemical properties, categorization of effect-triggering pathways directing the EINP effects towards specific recipients, and identification of dominant environmental parameters triggering fate and effect of EINP in specific ecosystems (e.g. soil, lake, or riverine systems). •Mechanisms of NOM sorption to NP and their effects on aggregation are largely unknown.•Masking, catching and dissolution processes determine nanoparticle fate & effect.•Assessment of environmental impacts on NP fate and effects needs further studies.•Single particle analytics enlighten nanoparticle speciation in the environment.•Still an analytical challenge: nanoparticle characterization in complex matrices
Author Lang, Friederike
Rakcheev, Denis
Bundschuh, Mirco
Philippe, Allan
Kühn, Melanie
Klitzke, Sondra
Schaumann, Gabriele E.
Kumahor, Samuel K.
Schulz, Ralf
Metreveli, George
Grün, Alexandra
Baumann, Thomas
Manz, Werner
Vogel, Hans-Jörg
Author_xml – sequence: 1
  givenname: Gabriele E.
  surname: Schaumann
  fullname: Schaumann, Gabriele E.
  email: schaumann@uni-landau.de
  organization: Universität Koblenz-Landau, Institute for Environmental Sciences, Group of Environmental and Soil Chemistry, Fortstr. 7, D-76829 Landau, Germany
– sequence: 2
  givenname: Allan
  surname: Philippe
  fullname: Philippe, Allan
  email: philippe@uni-landau.de
  organization: Universität Koblenz-Landau, Institute for Environmental Sciences, Group of Environmental and Soil Chemistry, Fortstr. 7, D-76829 Landau, Germany
– sequence: 3
  givenname: Mirco
  surname: Bundschuh
  fullname: Bundschuh, Mirco
  email: mirco.bundschuh@slu.se
  organization: Universität Koblenz-Landau, Institute for Environmental Sciences, Group of Ecotoxicology and Environment, Fortstr. 7, D-76829 Landau, Germany
– sequence: 4
  givenname: George
  surname: Metreveli
  fullname: Metreveli, George
  email: metreveli@uni-landau.de
  organization: Universität Koblenz-Landau, Institute for Environmental Sciences, Group of Environmental and Soil Chemistry, Fortstr. 7, D-76829 Landau, Germany
– sequence: 5
  givenname: Sondra
  surname: Klitzke
  fullname: Klitzke, Sondra
  email: sondra.klitzke@tu-berlin.de
  organization: Albert-Ludwigs-Universität Freiburg, Institute of Forest Sciences, Chair of Soil Ecology, 79085 Freiburg i.Br., Germany
– sequence: 6
  givenname: Denis
  surname: Rakcheev
  fullname: Rakcheev, Denis
  email: rakcheev@uni-landau.de
  organization: Universität Koblenz-Landau, Institute for Environmental Sciences, Group of Environmental and Soil Chemistry, Fortstr. 7, D-76829 Landau, Germany
– sequence: 7
  givenname: Alexandra
  surname: Grün
  fullname: Grün, Alexandra
  email: alexg@uni-koblenz.de
  organization: Universität Koblenz-Landau, Institute for Integrated Natural Sciences, Dept. of Biology, Universitätsstr. 1, D-56070 Koblenz, Germany
– sequence: 8
  givenname: Samuel K.
  surname: Kumahor
  fullname: Kumahor, Samuel K.
  email: samuel.kumahor@ufz.de
  organization: Helmholtz Centre for Environmental Research — UFZ, Department of Soil Physics, Theodor-Lieser-Strasse 4, D-06120 Halle, Germany
– sequence: 9
  givenname: Melanie
  surname: Kühn
  fullname: Kühn, Melanie
  email: melanie.kuehn@tum.de
  organization: Technische Universität München, Institute of Hydrochemistry, Marchioninistr. 17, D-81377 Munich, Germany
– sequence: 10
  givenname: Thomas
  surname: Baumann
  fullname: Baumann, Thomas
  email: tbaumann@tum.de
  organization: Technische Universität München, Institute of Hydrochemistry, Marchioninistr. 17, D-81377 Munich, Germany
– sequence: 11
  givenname: Friederike
  surname: Lang
  fullname: Lang, Friederike
  email: friederike.lang@bodenkunde.uni-freiburg.de
  organization: Albert-Ludwigs-Universität Freiburg, Institute of Forest Sciences, Chair of Soil Ecology, 79085 Freiburg i.Br., Germany
– sequence: 12
  givenname: Werner
  surname: Manz
  fullname: Manz, Werner
  email: manz@uni-koblenz.de
  organization: Universität Koblenz-Landau, Institute for Integrated Natural Sciences, Dept. of Biology, Universitätsstr. 1, D-56070 Koblenz, Germany
– sequence: 13
  givenname: Ralf
  surname: Schulz
  fullname: Schulz, Ralf
  email: schulz@uni-landau.de
  organization: Universität Koblenz-Landau, Institute for Environmental Sciences, Group of Ecotoxicology and Environment, Fortstr. 7, D-76829 Landau, Germany
– sequence: 14
  givenname: Hans-Jörg
  surname: Vogel
  fullname: Vogel, Hans-Jörg
  email: hans-joerg.vogel@ufz.de
  organization: Helmholtz Centre for Environmental Research — UFZ, Department of Soil Physics, Theodor-Lieser-Strasse 4, D-06120 Halle, Germany
BackLink https://www.ncbi.nlm.nih.gov/pubmed/25455109$$D View this record in MEDLINE/PubMed
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EPS
FT-IR
PVP
XAS
XRD
UC
UV–vis
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Aging
SHR
UV
DOM
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Snippet Engineered inorganic nanoparticles (EINP) from consumers' products and industrial applications, especially silver and titanium dioxide nanoparticles (NP), are...
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SubjectTerms Aggregation
Aging
Analytics
Annan biologi
Biological effects
Colloids
Ecotoxicology
Environment
Environmental Pollutants
Mathematical analysis
Nanoparticles
Obstacles
Other Biological Topics
Silver
Silver Compounds
Soil (material)
Thermodynamics
Titanium
Titanium dioxide
Transport
Title Understanding the fate and biological effects of Ag- and TiO2-nanoparticles in the environment: The quest for advanced analytics and interdisciplinary concepts
URI https://dx.doi.org/10.1016/j.scitotenv.2014.10.035
https://www.ncbi.nlm.nih.gov/pubmed/25455109
https://search.proquest.com/docview/1712768561
https://search.proquest.com/docview/1730069643
https://res.slu.se/id/publ/69539
Volume 535
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