SOME PECULIARITIES OF THE ORGANISM’S RESPONSES TO A LONG-TERM INHALATION OF SILICA-CONTAINING SUBMICRON (PREDOMINANTLY, NANOSCALE) PARTICLES IN A REAL INDUSTRIAL AEROSOL
- Авторлар: Sutunkova M.P.1, Solovyeva S.N.1, Katsnelson B.A.1, Gurvich V.B.1, Privalova L.I.1, Minigalieva I.A.1, Slyshkina T.V.1, Valamina I.E.2, Shur V.Y.3, Zubarev I.V.3, Kuznetsov D.K.3
-
Мекемелер:
- Medical Research Center for Prophylaxis and Health Protection in Industrial Workers of Rospotrebnadzor
- Central Research Laboratory, Ural State Medical University
- Ural Center for Shared Use «Modern nanotechnologies», Ural Federal University
- Шығарылым: № 3 (2017)
- Беттер: 17-26
- Бөлім: Articles
- ##submission.datePublished##: 28.06.2017
- URL: https://aspvestnik.ru/0869-7922/article/view/641000
- DOI: https://doi.org/10.36946/0869-7922-2017-3-17-26
- ID: 641000
Дәйексөз келтіру
Толық мәтін
Аннотация
Авторлар туралы
M. Sutunkova
Medical Research Center for Prophylaxis and Health Protection in Industrial Workers of Rospotrebnadzor
Хат алмасуға жауапты Автор.
Email: noemail@neicon.ru
Ресей
S. Solovyeva
Medical Research Center for Prophylaxis and Health Protection in Industrial Workers of Rospotrebnadzor
Email: noemail@neicon.ru
Ресей
B. Katsnelson
Medical Research Center for Prophylaxis and Health Protection in Industrial Workers of Rospotrebnadzor
Email: noemail@neicon.ru
Ресей
V. Gurvich
Medical Research Center for Prophylaxis and Health Protection in Industrial Workers of Rospotrebnadzor
Email: noemail@neicon.ru
Ресей
L. Privalova
Medical Research Center for Prophylaxis and Health Protection in Industrial Workers of Rospotrebnadzor
Email: noemail@neicon.ru
Ресей
I. Minigalieva
Medical Research Center for Prophylaxis and Health Protection in Industrial Workers of Rospotrebnadzor
Email: noemail@neicon.ru
Ресей
T. Slyshkina
Medical Research Center for Prophylaxis and Health Protection in Industrial Workers of Rospotrebnadzor
Email: noemail@neicon.ru
Ресей
I. Valamina
Central Research Laboratory, Ural State Medical University
Email: noemail@neicon.ru
Ресей
V. Shur
Ural Center for Shared Use «Modern nanotechnologies», Ural Federal University
Email: noemail@neicon.ru
Ресей
I. Zubarev
Ural Center for Shared Use «Modern nanotechnologies», Ural Federal University
Email: noemail@neicon.ru
Ресей
D. Kuznetsov
Ural Center for Shared Use «Modern nanotechnologies», Ural Federal University
Email: noemail@neicon.ru
Ресей
Әдебиет тізімі
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- Du Z.J., Zhao D.L., Jing L.,Cui G., Jin M., Li Y.et al. Cardiovascular toxicity of different sizes amorphous silica nanoparticles in rats after intratracheal instillation. Cardiovascular Toxicology. 2013; 13(3): 194–207.
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- Guo C., Yang M., Jing l., Wang J., Yu Y., Li Y. et al. Amorphous silica nanoparticles trigger vascular endothelial cell injury through apoptosis and autophagy via reactive oxygen species-mediated MAPK/Bcl-2 and PI3K/Akt/mTOR signaling. International J Nanomedicine. 2016; 11: 5257—5276
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- Kao Y.-Y., Cheng T.-J., Yang D.-M., Liu P.- Sh. Demonstration of an olfactory bulb–brain translocation pathway for ZnO nanoparticles in rodent ells in vitro and in vivo. J. Molecular Neuroscience. 2012; 48 (2): 464–471.
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- REFERENCES:
- Katsnelson B.A., Privalova L.I., Sutunkova M.P., Gurvich V.B., Minigalieva I.A., Loginova N.V. et al. Main results of toxicological experiments in vivo with some metal and metal oxides nanoparticles. Toksikologicheskij Vestnik. 2015; 3: 26-39 (in Russian).
- Katsnelson B.A., Privalova L.I., Sutunkova M.P., Gurvich V.B., Minigalieva I.A., Loginova N.V. et al. Some inferences from in vivo experiments with metal and metal oxide nanoparticles: the pulmonary phagocytosis response subchronic systemic toxicity and genotoxicity, regulatory proposals, searchin for bioprotectors (a selfoverview). International J. Nanomedicine. 2015;10: 3013–3029.
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- justification of iron oxide nanoparticles maximum allowable
- concentration in occupsational air. Toksicol Vestnik. 2016; 6:11-17 (in Russian).
- Sutunkova M.P., Katsnelson B.A., Privalova L.I., Gurvich V.B., Konysheva L.K., Shur V.Ya. et al. On the contribution of the phagocytosis and the solubilization to the iron oxide nanoparticles retention in and elimination from lungs under long-term inhalation exposure. Toxicology. 2016;363-364: 19-
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- Eom H.J., Choi J. Oxidative stress of silica nanoparticles in human bronchial epithelial cell, Beas-2B. Toxicology in Vitro.2009; 23(7):1326–1332.
- Kim Y.J., Yu M., Park H.O., Yang S.I. Comparative study of cytotoxicity, oxidative stress and genotoxicity induced by silica nanomaterials in human neuronal cell line. Molecular and Cellular Toxicology. 2010;6(4):336–343.
- Sergent J.A., Paget V., Chevillard S. Toxicity and genotoxicity of nano-SiO2 on human epithelial intestinal HT-29 cell line. Annals Occupational Hygiene. 2012; 56(5):622–630
- Du Z.J., Zhao D.L., Jing L.,Cui G., Jin M., Li Y.et al. Cardiovascular toxicity of different sizes amorphous silica nanoparticles in rats after intratracheal instillation. Cardiovascular Toxicology. 2013;13(3): 194–207.
- Petrick L., Rosenblat M., Paland N., Aviram M. Silicon dioxide nanoparticles increase macrophage atherogenicity: stimulation of cellular cytotoxicity, oxidative stress, and triglycerides accumulation. Environmental Toxicology. 2016;31(6):713–7
- Guo C., Xia Y., Niu P., Jiang L., Duan J., Yu Y. et al. Silica nanoparticles induce oxidative stress, inflammation, and endothelial dysfunction in vitro via activation of the MAPK/Nrf2 pathway and nuclear factor-κB signaling. International J. Nanomedicine.2015;10:1463-1477
- Guo C., Yang M., Jing l., Wang J., Yu Y., Li Y. et al. Amorphous silica nanoparticles trigger vascular endothelial cell injury through apoptosis and autophagy via reactive oxygen species-mediated MAPK/Bcl-2 and PI3K/Akt/mTOR signaling. International J Nanomedicine. 2016; 11: 5257—5276.
- Privalova L.I., Katsnelson B.A., Osipenko A.B., Yushkov B.H., Babushkina L.G. Response of a phagocyte cell system to products of macrophage breakdown as a probable mechanism of alveolar phagocytosis adaptation to deposition of particles of different cytotoxicity. Environmental Health Perspectives. 1980;35: 205–218.
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- Elder A., Gelein R., Silva V., Feikert T., Opanashuk L., Carter J. et al.. Translocation of inhaled ultrafine manganese oxide particles to the central nervous system. Environ Health Perspect. 2006; 114 (8):1172–1178.
- Kao Y.-Y., Cheng T.-J., Yang D.-M., Liu P.- Sh. Demonstration of an olfactory bulb–brain translocation pathway for ZnO nanoparticles in rodent ells in vitro and in vivo. J. Molecular Neuroscience. 2012; 48 (2): 464–471.
- Oberdörster G., Sharp Z., Atudore V., Elder A., Gelein R., Kreylin W.Translocation of inhaled ultrafine particle to the brainI. Inhalation Toxicology. 2004; 16 (6/7),437–445.
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