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Size-Dependent Toxicity of Silver Nanoparticles to Bacteria, Yeast, Algae, Crustaceans and Mammalian Cells In Vitro

The concept of nanotechnologies is based on size-dependent properties of particles in the 1–100 nm range. However, the relation between the particle size and biological effects is still unclear. The aim of the current paper was to generate and analyse a homogenous set of experimental toxicity data o...

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Autores principales: Ivask, Angela, Kurvet, Imbi, Kasemets, Kaja, Blinova, Irina, Aruoja, Villem, Suppi, Sandra, Vija, Heiki, Käkinen, Aleksandr, Titma, Tiina, Heinlaan, Margit, Visnapuu, Meeri, Koller, Dagmar, Kisand, Vambola, Kahru, Anne
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4105572/
https://www.ncbi.nlm.nih.gov/pubmed/25048192
http://dx.doi.org/10.1371/journal.pone.0102108
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author Ivask, Angela
Kurvet, Imbi
Kasemets, Kaja
Blinova, Irina
Aruoja, Villem
Suppi, Sandra
Vija, Heiki
Käkinen, Aleksandr
Titma, Tiina
Heinlaan, Margit
Visnapuu, Meeri
Koller, Dagmar
Kisand, Vambola
Kahru, Anne
author_facet Ivask, Angela
Kurvet, Imbi
Kasemets, Kaja
Blinova, Irina
Aruoja, Villem
Suppi, Sandra
Vija, Heiki
Käkinen, Aleksandr
Titma, Tiina
Heinlaan, Margit
Visnapuu, Meeri
Koller, Dagmar
Kisand, Vambola
Kahru, Anne
author_sort Ivask, Angela
collection PubMed
description The concept of nanotechnologies is based on size-dependent properties of particles in the 1–100 nm range. However, the relation between the particle size and biological effects is still unclear. The aim of the current paper was to generate and analyse a homogenous set of experimental toxicity data on Ag nanoparticles (Ag NPs) of similar coating (citrate) but of 5 different primary sizes (10, 20, 40, 60 and 80 nm) to different types of organisms/cells commonly used in toxicity assays: bacterial, yeast and algal cells, crustaceans and mammalian cells in vitro. When possible, the assays were conducted in ultrapure water to minimise the effect of medium components on silver speciation. The toxic effects of NPs to different organisms varied about two orders of magnitude, being the lowest (∼0.1 mg Ag/L) for crustaceans and algae and the highest (∼26 mg Ag/L) for mammalian cells. To quantify the role of Ag ions in the toxicity of Ag NPs, we normalized the EC(50) values to Ag ions that dissolved from the NPs. The analysis showed that the toxicity of 20–80 nm Ag NPs could fully be explained by released Ag ions whereas 10 nm Ag NPs proved more toxic than predicted. Using E. coli Ag-biosensor, we demonstrated that 10 nm Ag NPs were more bioavailable to E. coli than silver salt (AgNO(3)). Thus, one may infer that 10 nm Ag NPs had more efficient cell-particle contact resulting in higher intracellular bioavailability of silver than in case of bigger NPs. Although the latter conclusion is initially based on one test organism, it may lead to an explanation for “size-dependent“ biological effects of silver NPs. This study, for the first time, investigated the size-dependent toxic effects of a well-characterized library of Ag NPs to several microbial species, protozoans, algae, crustaceans and mammalian cells in vitro.
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spelling pubmed-41055722014-07-23 Size-Dependent Toxicity of Silver Nanoparticles to Bacteria, Yeast, Algae, Crustaceans and Mammalian Cells In Vitro Ivask, Angela Kurvet, Imbi Kasemets, Kaja Blinova, Irina Aruoja, Villem Suppi, Sandra Vija, Heiki Käkinen, Aleksandr Titma, Tiina Heinlaan, Margit Visnapuu, Meeri Koller, Dagmar Kisand, Vambola Kahru, Anne PLoS One Research Article The concept of nanotechnologies is based on size-dependent properties of particles in the 1–100 nm range. However, the relation between the particle size and biological effects is still unclear. The aim of the current paper was to generate and analyse a homogenous set of experimental toxicity data on Ag nanoparticles (Ag NPs) of similar coating (citrate) but of 5 different primary sizes (10, 20, 40, 60 and 80 nm) to different types of organisms/cells commonly used in toxicity assays: bacterial, yeast and algal cells, crustaceans and mammalian cells in vitro. When possible, the assays were conducted in ultrapure water to minimise the effect of medium components on silver speciation. The toxic effects of NPs to different organisms varied about two orders of magnitude, being the lowest (∼0.1 mg Ag/L) for crustaceans and algae and the highest (∼26 mg Ag/L) for mammalian cells. To quantify the role of Ag ions in the toxicity of Ag NPs, we normalized the EC(50) values to Ag ions that dissolved from the NPs. The analysis showed that the toxicity of 20–80 nm Ag NPs could fully be explained by released Ag ions whereas 10 nm Ag NPs proved more toxic than predicted. Using E. coli Ag-biosensor, we demonstrated that 10 nm Ag NPs were more bioavailable to E. coli than silver salt (AgNO(3)). Thus, one may infer that 10 nm Ag NPs had more efficient cell-particle contact resulting in higher intracellular bioavailability of silver than in case of bigger NPs. Although the latter conclusion is initially based on one test organism, it may lead to an explanation for “size-dependent“ biological effects of silver NPs. This study, for the first time, investigated the size-dependent toxic effects of a well-characterized library of Ag NPs to several microbial species, protozoans, algae, crustaceans and mammalian cells in vitro. Public Library of Science 2014-07-21 /pmc/articles/PMC4105572/ /pubmed/25048192 http://dx.doi.org/10.1371/journal.pone.0102108 Text en © 2014 Ivask et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Ivask, Angela
Kurvet, Imbi
Kasemets, Kaja
Blinova, Irina
Aruoja, Villem
Suppi, Sandra
Vija, Heiki
Käkinen, Aleksandr
Titma, Tiina
Heinlaan, Margit
Visnapuu, Meeri
Koller, Dagmar
Kisand, Vambola
Kahru, Anne
Size-Dependent Toxicity of Silver Nanoparticles to Bacteria, Yeast, Algae, Crustaceans and Mammalian Cells In Vitro
title Size-Dependent Toxicity of Silver Nanoparticles to Bacteria, Yeast, Algae, Crustaceans and Mammalian Cells In Vitro
title_full Size-Dependent Toxicity of Silver Nanoparticles to Bacteria, Yeast, Algae, Crustaceans and Mammalian Cells In Vitro
title_fullStr Size-Dependent Toxicity of Silver Nanoparticles to Bacteria, Yeast, Algae, Crustaceans and Mammalian Cells In Vitro
title_full_unstemmed Size-Dependent Toxicity of Silver Nanoparticles to Bacteria, Yeast, Algae, Crustaceans and Mammalian Cells In Vitro
title_short Size-Dependent Toxicity of Silver Nanoparticles to Bacteria, Yeast, Algae, Crustaceans and Mammalian Cells In Vitro
title_sort size-dependent toxicity of silver nanoparticles to bacteria, yeast, algae, crustaceans and mammalian cells in vitro
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4105572/
https://www.ncbi.nlm.nih.gov/pubmed/25048192
http://dx.doi.org/10.1371/journal.pone.0102108
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