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Carbon nanotubes and other engineered nanoparticles induced pathophysiology on mesothelial cells and mesothelial membranes

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Autor
Sinis S.I., Hatzoglou C., Gourgoulianis K.I., Zarogiannis S.G.
Fecha
2018
Language
en
DOI
10.3389/fphys.2018.00295
Materia
carbon nanotube
multi walled nanotube
nanomaterial
nanoparticle
nickel
nickel nanoparticle
polyacrylic acid
silica nanoparticle
single walled nanotube
carcinogenicity
chronic inflammation
cytotoxicity
DNA damage
genotoxicity
human
membrane permeability
mesothelium cell
myeloid-derived suppressor cell
nanotoxicology
nonhuman
particle size
pathophysiology
physical chemistry
pleura disease
pleura mesothelioma
pleural fibrosis
pleurisy
Review
structure activity relation
Frontiers Media S.A.
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Resumen
Nanoparticles have great potential for numerous applications due to their unique physicochemical properties. However, concerns have been raised that they may induce deleterious effects on biological systems. There is accumulating evidence that, like asbestos, inhaled nanomaterials of >5 μm and high aspect ratio (3:1), particularly rod-like carbon nanotubes, may inflict pleural disease including mesothelioma. Additionally, a recent set of case reports suggests that inhalation of polyacrylate/nanosilica could in part be associated with inflammation and fibrosis of the pleura of factory workers. However, the adverse outcomes of nanoparticle exposure to mesothelial tissues are still largely unexplored. In that context, the present review aims to provide an overview of the relevant pathophysiological implications involving toxicological studies describing effects of engineered nanoparticles on mesothelial cells and membranes. In vitro studies primarily emphasize on simulating cellular uptake and toxicity of nanotubes on benign or malignant cell lines. On the other hand, in vivo studies focus on illustrating endpoints of serosal pathology in rodent animal models. From a molecular aspect, some nanoparticle categories are shown to be cytotoxic and genotoxic after acute treatment, whereas chronic incubation may lead to malignant-like transformation. At an organism level, a number of fibrous shaped nanotubes are related with features of chronic inflammation and MWCNT-7 is the only type to consistently inflict mesothelioma. © 2018 Sinis, Hatzoglou, Gourgoulianis and Zarogiannis.
URI
http://hdl.handle.net/11615/79017
Colecciones
  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]
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