Home / Publications / Toxicity of metal nanoparticles with a focus on silver

Toxicity of metal nanoparticles with a focus on silver

21
Share
Cite this
GOST
 | 
Cite this
GOST Copy
Golovina N. B., Kustov L. M. Toxicity of metal nanoparticles with a focus on silver // Mendeleev Communications. 2013. Vol. 23. No. 2. pp. 59-65.
GOST all authors (up to 50) Copy
Golovina N. B., Kustov L. M. Toxicity of metal nanoparticles with a focus on silver // Mendeleev Communications. 2013. Vol. 23. No. 2. pp. 59-65.
RIS
 | 
Cite this
RIS Copy
TY - JOUR
DO - 10.1016/j.mencom.2013.03.001
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2013.03.001
TI - Toxicity of metal nanoparticles with a focus on silver
T2 - Mendeleev Communications
AU - Golovina, Natalia Borisovna
AU - Kustov, Leonid Modestovich
PY - 2013
DA - 2013/03/06
PB - Mendeleev Communications
SP - 59-65
IS - 2
VL - 23
ER -
BibTex
 | 
Cite this
BibTex (up to 50 authors) Copy
@article{2013_Golovina,
author = {Natalia Borisovna Golovina and Leonid Modestovich Kustov},
title = {Toxicity of metal nanoparticles with a focus on silver},
journal = {Mendeleev Communications},
year = {2013},
volume = {23},
publisher = {Mendeleev Communications},
month = {Mar},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2013.03.001},
number = {2},
pages = {59--65},
doi = {10.1016/j.mencom.2013.03.001}
}
MLA
Cite this
MLA Copy
Golovina, Natalia Borisovna, and Leonid Modestovich Kustov. “Toxicity of metal nanoparticles with a focus on silver.” Mendeleev Communications, vol. 23, no. 2, Mar. 2013, pp. 59-65. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2013.03.001.
Views / Downloads
1 / 1

Keywords

nanotoxicity
QSAR
silver nanoparticles

Abstract

Properties of nanoparticles are significantly different from their bulk counterparts, including their biological and toxic activity. The properties of silver nanoparticles governing their toxicological effects are summarized. These basic characteristics can be used as descriptors for modelling the toxic properties of nanoparticles.

References

1.
The Challenge of Regulating Nanomaterials
Chatterjee R.
Environmental Science & Technology, 2008
2.
D. Berhanu and E. Valsami-Jones, in Towards Efficient Designing of Safe Nanomaterials: Innovative Merge of Computational Approaches and Experimental Techniques, eds. J. Leszczynski and T. Puzyn, RSC Publishing, 2012, vol. 4, p. 378.
3.
Nanosilver: a nanoproduct in medical application.
Chen X., Schluesener H.J.
Toxicology Letters, 2008
4.
Nano-silver – a review of available data and knowledge gaps in human and environmental risk assessment
Wijnhoven S.W., Peijnenburg W.J., Herberts C.A., Hagens W.I., Oomen A.G., Heugens E.H., Roszek B., Bisschops J., Gosens I., Van De Meent D., Dekkers S., De Jong W.H., van Zijverden M., Sips A.J., Geertsma R.E., et. al.
Nanotoxicology, 2009
5.
TOXICITY OF SILVER NANOPARTICLES INCREASES DURING STORAGE BECAUSE OF SLOW DISSOLUTION UNDER RELEASE OF SILVER IONS
Kittler S., Greulich C., Diendorf J., Köller M., Epple M.
Chemistry of Materials, 2010
6.
OECD: Final Report, State of the Science – Everything Nanosilver and U.S. Environmental Protection Agency Office of Research and Development, OECD Publishing, Washington, 2010.
7.
OECD: List of Manufactured Nanomaterials and List of Endpoints for Phase One of the Sponsorship Programme for the Testing of Manufactured Nanomaterials: Revision, No. 27 Series on the Safety of Manufactured Nanomaterials, OECD Publishing, 2008.
10.
A. Alagarasi, Introduction to Nanomaterials, ht**tp://www.nccr.iitm.ac.in/2011.pdf.
11.
Challenges and Advances in Computational Chemistry and Physics, eds. T. Puzyn, J. Leszczynski and M. T. D. Cronin, Springer, Dordrecht, 2010, vol. 8, p. 414.
12.
Silver Colloid Nanoparticles:  Synthesis, Characterization, and Their Antibacterial Activity
Panáček A., Kvítek L., Prucek R., Kolář M., Večeřová R., Pizúrová N., Sharma V.K., Nevěčná T., Zbořil R.
Journal of Physical Chemistry B, 2006
13.
The influence of complexing agent concentration on particle size in the process of SERS active silver colloid synthesis
Kvítek L., Prucek R., Panáček A., Novotný R., Hrbáč J., Zbořil R.
Journal of Materials Chemistry A, 2005
15.
Nanoparticles in aquatic systems
Delay M., Frimmel F.H.
Analytical and Bioanalytical Chemistry, 2011
16.
The Structural Diversity of the Nanoworld
Shevchenko V.Y., Madison A.E., Shudegov V.E.
Glass Physics and Chemistry, 2003
19.
Role of Temperature in the Growth of Silver Nanoparticles Through a Synergetic Reduction Approach
Jiang X.C., Chen W.M., Chen C.Y., Xiong S.X., Yu A.B.
Nanoscale Research Letters, 2010
20.
Interaction of silver nanoparticles with HIV-1
Elechiguerra J.L., Burt J.L., Morones J.R., Camacho-Bragado A., Gao X., Lara H.H., Yacaman M.J.
Journal of Nanobiotechnology, 2005
21.
The morphology of silver nanoparticles prepared by enzyme-induced reduction
Schneidewind H., Schüler T., Strelau K.K., Weber K., Cialla D., Diegel M., Mattheis R., Berger A., Möller R., Popp J.
Beilstein Journal of Nanotechnology, 2012
22.
10.1016/j.mencom.2013.03.001_bib0110
Yang
J. Phys. Chem., 2007
23.
Laser-induced morphology changes of silver colloids prepared by laser ablation in water
Tsuji T., Okazaki Y., Higuchi T., Tsuji M.
Journal of Photochemistry and Photobiology A: Chemistry, 2006
24.
Synthesis of silver nanoparticles with flake-like shapes
Wang D., Song C., Hu Z., Zhou X.
Materials Letters, 2005
26.
Shape dependent electrocatalytic behaviour of silver nanoparticles
Bansal V., Li V., O'Mullane A.P., Bhargava S.K.
CrystEngComm, 2010
27.
Surface Defects on Plate-Shaped Silver Nanoparticles Contribute to Its Hazard Potential in a Fish Gill Cell Line and Zebrafish Embryos
George S., Lin S., Ji Z., Thomas C.R., Li L., Mecklenburg M., Meng H., Wang X., Zhang H., Xia T., Hohman J.N., Lin S., Zink J.I., Weiss P.S., Nel A.E., et. al.
ACS Nano, 2012
28.
Shape and Internal Structure of Silver Nanoparticles Embedded in Glass
Hofmeister H., Tan G.L., Dubiel M.
Journal of Materials Research, 2005
30.
Twenty-Eight-Day Inhalation Toxicity Study of Silver Nanoparticles in Sprague-Dawley Rats
Ji J.H., Jung J.H., Kim S.S., Yoon J., Park J.D., Choi B.S., Chung Y.H., Kwon I.H., Jeong J., Han B.S., Shin J.H., Sung J.H., Song K.S., Yu I.J.
Inhalation Toxicology, 2007
34.
Surface charge-dependent toxicity of silver nanoparticles.
El Badawy A.M., Silva R.G., Morris B., Scheckel K.G., Suidan M.T., Tolaymat T.M.
Environmental Science & Technology, 2010
36.
Malvern Instruments 2004 Hardware Manual. Zetasizer Nano Series Manual, Issue 1.1, Malvern, UK.
37.
I. Lopez-Salido, Electronic and Geometric Properties of Silver and Gold Nanoparticles, http://kops.ub.uni-konstanz.de/bitstream/handle/urn:nbn: de:bsz:352-opus-27075/Dissertation_Lopez_salido.pdf?sequence=1.
38.
10.1016/j.mencom.2013.03.001_bib0190
Groenen
Electrical and Microwave Characteristics of Silver Nanoparticle Composites, 2010
39.
Characterization of Nanomaterial Dispersion in Solution Prior to In Vitro Exposure Using Dynamic Light Scattering Technique
Murdock R.C., Braydich-Stolle L., Schrand A.M., Schlager J.J., Hussain S.M.
Toxicological Sciences, 2007
40.
OECD: Current Developments/Activities on the Safety of Manufactured Nanomaterials, No. 29 Series on the Safety of Manufactured Nanomaterials, OECD Publishing, 2011.
41.
10.1016/j.mencom.2013.03.001_bib0205
Elder
Clin. Occup. Environ. Med., 2006
42.
Molecular modeling studies on the active binding site of the blood–brain barrier choline transporter
Geldenhuys W.J., Lockman P.R., McAfee J.H., Fitzpatrick K.T., Van der Schyf C.J., Allen D.D.
Bioorganic and Medicinal Chemistry Letters, 2004
44.
Nanoparticulate systems for brain delivery of drugs
45.
Nanoparticle Surface Charges Alter Blood–Brain Barrier Integrity and Permeability
Lockman P.R., Koziara J.M., Mumper R.J., Allen D.D.
Journal of Drug Targeting, 2004
46.
Cation Transport Specificity at the Blood?Brain Barrier
Lockman P.R., McAfee J.H., Geldenhuys W.J., Allen D.D.
Neurochemical Research, 2004
47.
Translocation of Inhaled Ultrafine Particles to the Brain
Oberdörster G., Sharp Z., Atudorei V., Elder A., Gelein R., Kreyling W., Cox C.
Inhalation Toxicology, 2004
48.
In Vivo Toxicity of Silver Nanoparticles and Silver Ions in Zebrafish (Danio rerio)
Bilberg K., Hovgaard M.B., Besenbacher F., Baatrup E.
Journal of Toxicology, 2012
49.
S. M. Hoheisel, MS Thesis, University of Minnesota, 2010.
50.
Toxicity of various silver nanoparticles compared to silver ions in Daphnia magna
Asghari S., Johari S.A., Lee J.H., Kim Y.S., Jeon Y.B., Choi H.J., Moon M.C., Yu I.J.
Journal of Nanobiotechnology, 2012
51.
Silver nanoparticles: behaviour and effects in the aquatic environment.
Fabrega J., Luoma S.N., Tyler C.R., Galloway T.S., Lead J.R.
Environmental International, 2011
52.
OECD Guidelines for the Testing of Chemicals: Daphnia sp., acute Immobilization Test, OECD Publishing, 2004.
53.
Effects of silver and cerium dioxide micro- and nano-sized particles on Daphnia magna.
Gaiser B.K., Biswas A., Rosenkranz P., Jepson M.A., Lead J.R., Stone V., Tyler C.R., Fernandes T.F.
Journal of Environmental Monitoring, 2011
54.
10.1016/j.mencom.2013.03.001_bib0270
Yale
Purdue Univ. J., 2010
56.
The Differential Cytotoxicity of Water-Soluble Fullerenes
Sayes C.M., Fortner J.D., Guo W., Lyon D., Boyd A.M., Ausman K.D., Tao Y.J., Sitharaman B., Wilson L.J., Hughes J.B., West J.L., Colvin V.L.
Nano Letters, 2004
58.
Perturbational profiling of nanomaterial biologic activity
Shaw S.Y., Westly E.C., Pittet M.J., Subramanian A., Schreiber S.L., Weissleder R.
Proceedings of the National Academy of Sciences of the United States of America, 2008
61.
Using nano-QSAR to predict the cytotoxicity of metal oxide nanoparticles
Puzyn T., Rasulev B., Gajewicz A., Hu X., Dasari T.P., Michalkova A., Hwang H., Toropov A., Leszczynska D., Leszczynski J.
Nature Nanotechnology, 2011
62.
10.1016/j.mencom.2013.03.001_bib0310
Kumar
Nanomaterials Toxicity, Health and Environmental Issues, 2006
63.
Nanomaterials and nanotechnologies: methods of analysis and control
Gmoshinski I.V., Khotimchenko S.A., Popov V.O., Dzantiev B.B., Zherdev A.V., Demin V.F., Buzulukov Y.P.
Russian Chemical Reviews, 2013