Showing posts with label Nanoparticle. Show all posts
Showing posts with label Nanoparticle. Show all posts

Nanoparticle exposure reactivates latent herpesvirus and restores a signature of acute infection | Particle and Fibre Toxicology | Full Text

Background

Inhalation of environmental (nano) particles (NP) as well as persistent herpesvirus-infection are potentially associated with chronic lung disease and as both are omnipresent in human society a coincidence of these two factors is highly likely. We hypothesized that NP-exposure of persistently herpesvirus-infected cells as a second hit might disrupt immune control of viral latency, provoke reactivation of latent virus and eventually lead to an inflammatory response and tissue damage.

Results

To test this hypothesis, we applied different NP to cells or mice latently infected with murine gammaherpesvirus 68 (MHV-68) which provides a small animal model for the study of gammaherpesvirus-pathogenesis in vitro and in vivo. In vitro, NP-exposure induced expression of the typically lytic viral gene ORF50 and production of lytic virus. In vivo, lytic viral proteins in the lung increased after intratracheal instillation with NP and elevated expression of the viral gene ORF50 could be detected in cells from bronchoalveolar lavage. Gene expression and metabolome analysis of whole lung tissue revealed patterns with striking similarities to acute infection. Likewise, NP-exposure of human cells latently infected with Epstein-Barr-Virus also induced virus production.

Conclusions

Our results indicate that NP-exposure of persistently herpesvirus-infected cells – murine or human – restores molecular signatures found in acute virus infection, boosts production of lytic viral proteins, and induces an inflammatory response in the lung – a combination which might finally result in tissue damage and pathological alterations.


Genotoxicity Studies of Titanium Dioxide Nanoparticles (TiO2NPs) in the Brain of Mice. - PubMed - NCBI

Titanium dioxide nanoparticles (TiO2NPs) are excessively used and represent one of the top five most commonly used nanoparticles worldwide. Recently, various studies referred to their toxic potential on various organs using different treatment route. Male Swiss Webster mice were orally administrated TiO2NPs (500 mg/kg b.w.) daily for five consecutive days and then animals were sacrificed at 24 h, 7 days, or 14 days after the last treatment. The present results report that exposure to TiO2NPs produces mild to moderate changes in the cytoarchitecture of brain tissue in a time dependent manner. Moreover, Comet assay revealed the apoptotic DNA fragmentation, while PCR-SSCP pattern and direct sequencing showed point mutation of Presenilin 1 gene at exon 5, gene linked to inherited forms of the Alzheimer's disease. Therefore, from these findings, the present study concluded that TiO2NPs is genotoxic and mutagenic to brain tissue which in turn might lead to Alzheimer's disease incidence.



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Toxic air pollution particles found in human brains

Toxic nanoparticles from air pollution have been discovered in human brains in “abundant” quantities, a newly published study reveals.

The detection of the particles, in brain tissue from 37 people, raises concerns because recent research has suggested links between these magnetite particles and Alzheimer’s disease, while air pollution has been shown to significantly increase the risk of the disease. However, the new work is still a long way from proving that the air pollution particles cause or exacerbate Alzheimer’s.

“This is a discovery finding, and now what should start is a whole new examination of this as a potentially very important environmental risk factor for Alzheimer’s disease,” said Prof Barbara Maher, at Lancaster University, who led the new research. “Now there is a reason to go on and do the epidemiology and the toxicity testing, because these particles are so prolific and people are exposed to them.”

Uptake of Silica Nanoparticles: Neurotoxicity and Alzheimer-like Pathology in Human SK-N-SH and Mouse Neuro2a Neuroblastoma Cells.

Growing concern has been raised over the potential adverse effects of
engineered nanoparticles on human health due to their increasing use in
commercial and medical applications. Silica nanoparticles (SiNPs) are
one of the most widely-used nanoparticles in industry and have been
formulated for cellular and non-viral gene delivery in the central nerve
system. However, the potential neurotoxicity of SiNPs remains largely
unclear. In this study, we investigated the cellular uptake of SiNPs in
human SK-N-SH and mouse neuro2a (N2a) neuroblastoma cells treated with
10.0μg/ml of 15-nm SiNPs for 24h by transmission electron microcopy. We
found that SiNPs were mainly localized in the cytoplasm of the treated
cells. The treatment of SiNPs at various concentrations impaired the
morphology of SK-N-SH and N2a cells, characterized by increased number
of round cells, diminishing of dendrite-like processes and decreased
cell density. SiNPs significantly decreased the cell viability, induced
cellular apoptosis, and elevated the levels of intracellular reactive
oxygen species (ROS) in a dose-dependent manner in both cell lines.
Additionally, increased deposit of intracellular β-amyloid 1-42 (Aβ1-42)
and enhanced phosphorylation of tau at Ser262 and Ser396, two specific
pathological hallmarks of Alzheimer's disease (AD), were observed in
both cell lines with SiNPs treatment. Concomitantly, the expression of
amyloid precursor protein (APP) was up-regulated, while
amyloid-β-degrading enzyme neprilysin was down-regulated in SiNP-treated
cells. Finally, activity-dependent phosphorylation of glycogen
syntheses kinase (GSK)-3β at Ser9 (inactive form) was significantly
decreased in SiNP-treated SK-N-SH cells. Taken together, these data
demonstrated that exposure to SiNPs induced neurotoxicity and
pathological signs of AD. The pre-Alzheimer-like pathology induced by
SiNPs might result from the dys-regulated expression of APP/neprilysin
and activation of GSK-3β. This is the first study with direct evidence
indicating that in addition to neurotoxicity induced by SiNPs, the
application of SiNPs might increase the risk of developing AD.
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Nanoparticle Exposure Linked To Rheumatoid Arthritis And Other Autoimmune Diseases

Medical News Today: According to a study published in the journal Nanomedicine, researchers have found an association between exposure to nanoparticles and rheumatoid arthritis and the development of other serious autoimmune disease. In addition, the team discovered new cellular targets for developing potential drug therapies to treat autoimmune diseases. The process involves citrullination, the transformation of arginine into citrulline, which can trigger autoimmune diseases.
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