Scinovex
articleTop 1% cited

Unique Cellular Interaction of Silver Nanoparticles: Size-Dependent Generation of Reactive Oxygen Species

The Journal of Physical Chemistry B · 2008 · Vol. 112(43) · pp. 13608–13619
CAROL A. CARLSONSaber M. HussainAmanda M. SchrandLaura K. Braydich‐StolleK.L. HessRochelle L JonesJ.J. Schlager

Abstract

The rapid advancement of nanotechnology has created a vast array of engineered nanomaterials (ENMs) which have unique physical (size, shape, crystallinity, surface charge) and chemical (surface coating, elemental composition and solubility) attributes. These physicochemical properties of ENMs can produce chemical conditions to induce a pro-oxidant environment in the cells, causing an imbalanced cellular energy system dependent on redox potential and thereby leading to adverse biological consequences, ranging from the initiation of inflammatory pathways through to cell death. The present study was designed to evaluate size-dependent cellular interactions of known biologically active silver nanoparticles (NPs, Ag-15 nm, Ag-30 nm, and Ag-55 nm). Alveolar macrophages provide the first defense and were studied for their potential role in initiating oxidative stress. Cell exposure produced morphologically abnormal sizes and adherence characteristics with significant NP uptake at high doses after 24 h. Toxicity evaluations using mitochondrial and cell membrane viability along with reactive oxygen species (ROS) were performed. After 24 h of exposure, viability metrics significantly decreased with increasing dose (10-75 microg/mL) of Ag-15 nm and Ag-30 nm NPs. A more than 10-fold increase of ROS levels in cells exposed to 50 microg/mL Ag-15 nm suggests that the cytotoxicity of Ag-15 nm is likely to be mediated through oxidative stress. In addition, activation of the release of traditional inflammatory mediators were examined by measuring levels of cytokines/chemokines, including tumor necrosis factor (TNF-alpha), macrophage inhibitory protein (MIP-2), and interleukin-6 (IL-6), released into the culture media. After 24 h of exposure to Ag-15 nm nanoparticles, a significant inflammatory response was observed by the release of TNF-alpha, MIP-2, and IL-1beta. However, there was no detectable level of IL-6 upon exposure to silver nanoparticles. In summary, a size-dependent toxicity was produced by silver nanoparticles, and one predominant mechanism of toxicity was found to be largely mediated through oxidative stress.

Nanoparticles: synthesis and applicationsAnesthesia and Neurotoxicity ResearchAir Quality and Health ImpactsReactive oxygen speciesOxidative stressViability assayBiophysicsNanotoxicologyChemistrySilver nanoparticleTumor necrosis factor alphaCytotoxicityChemokine

MeSH terms

AnimalsCells, CulturedGlutathioneImmunohistochemistryInflammationL-Lactate DehydrogenaseMembrane PotentialsMicroscopy, Electron, ScanningMicroscopy, Phase-ContrastMitochondriaParticle SizeSilverSolutionsMacrophages, AlveolarReactive Oxygen Species
Citations
1,795
FWCI
30.49
field-weighted impact
References
35
Percentile
100%
vs. same field & year
Citations per year
Cited by
Environmental Transformations of Silver Nanoparticles: Impact on Stability and Toxicity
Environmental Science & Technology · 2012 · 1,472 citations
Bactericidal and Cytotoxic Properties of Silver Nanoparticles
International Journal of Molecular Sciences · 2019 · 1,009 citations
Nanomaterials: Applications, waste-handling, environmental toxicities, and future challenges – A review
Journal of environmental chemical engineering · 2021 · 285 citations
Bio-nanocomposites for food packaging applications
Progress in Polymer Science · 2013 · 1,891 citations
Silver Nanoparticles: Synthesis and Application for Nanomedicine
International Journal of Molecular Sciences · 2019 · 1,361 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.