| Literature DB >> 20936181 |
Cheng-Teng Ng1, Jasmine J Li, Boon-Huat Bay, Lin-Yue Lanry Yung.
Abstract
Nanotechnology has created opportunities for engineers to manufacture superior and more efficient devices and products. Nanomaterials (NMs) are now widely used in consumer products as well as for research applications. However, while the lists of known toxic effects of nanomaterials and nanoparticles (NPs) continue to grow, there is still a vast gap in our knowledge about the genotoxicity of NMs. In this paper, we highlight some NMs of interest and discuss the current in vivo and in vitro studies into genotoxic effects of NMs.Entities:
Year: 2010 PMID: 20936181 PMCID: PMC2946614 DOI: 10.4061/2010/947859
Source DB: PubMed Journal: J Nucleic Acids ISSN: 2090-0201
Selected in vivo genotoxicity studies on NMs.
| Type of NP | Size and form | Experimental design/genotoxic tests | Summary of findings | References |
|---|---|---|---|---|
| C60 | spheres | Bone marrow micronucleus test on | No | Shinohara et al.; 2009 [ |
| C60 | spheres | Oral administration at doses of 0.064 and 0.64 mg/kg of body weight. | Both NPs were associated | Folkmann et al.; 2009 [ |
| SWCNT | nanotubes | Oral administration and urinary samples collected | No urinary mutagenicity |
Szendi and Varga 2008 [ |
| Carbon | nanospheres | Apo E knockout mice | Increase in cytokines gene | Jacobsen et al.; 2009 [ |
| TiO2 | anatase/rutile 21 nm | TiO2 ingested through | Increase in 8-OHdG and | Trouiller et al.; 2009 [ |
| Ag | 60 nm | Oral administration | No significant genotoxicity | Kim et al.; 2008 [ |
| Silica | amorphous | Inhalation study where mice were exposed to 3.7 × 107 and 1.8 × 108 particles/cm3 | No significant pulmonary, | Sayes et al.; 2010 [ |
Selected in vitro genotoxicity studies on NMs.
| Type of NP | Size and form | Experimental design/genotoxic tests | Summary of findings | References |
|---|---|---|---|---|
| Carbons | ||||
| C60 | 0.92 m2/g surface area | Ames test | No mutagenic response, | Shinohara et al.; 2009 [ |
| C60 | polyhydroxylated | CHO-K1 cells | No genotoxicity at all doses (11–221 | Mrdanović et al., 2009 [ |
| C60 | nanospheres | Mouse primary embryo fibroblasts | Increased mutation yield and induces kilo-based pair deletion mutations in transgenic mouse cells. | Xu et al.; 2009 [ |
| SWCNT | nanotubes | Human lymphocytes in culture CBMN test | No genotoxicity effects but SWCNT induces mitotic inhibition | Szendi and Varga; 2008 [ |
| MWSCNT | agglomerates | V79 cells treated for 18 h and 30 h at 2.5, 5 and 10 | No mutagenic or clastogenic effects | Wirnitzer et al., 2009 [ |
| MWSCNT | nanotubes | Ames test on | No mutagenic effects | Di Sotto et al.; 2009, [ |
| C60 | 0.7 nm (C60) 0.9–1.7 nm (SWCNT) 14 nm (CB) | FE1-muta trademark mouse lung epithelial cell line comet assay | No cell death. Slower proliferation and cell-cycle arrest at G1 with SWCNT. | Jacobsen et al., 2008 [ |
| Metals | ||||
| Alumina | bare | Human primary fibroblasts over 5 days | At 24 h, Al2O3 increase micronucleus binucleated cells, chromosomal loss, gain, and polyploidy. | Tsaousi et al.; 2010, [ |
| Co | 20 nm | Balb/3T3 cells at 1–100 | Significant results for CBMN and comet assay but no dose-dependency. | Ponti et al.; 2009 [ |
| Co | 100–500 nm | Peripheral blood leulocytes at 24, 48 h timepoints in 10−5M and 10−4M dose concentrations | Induces DNA damage | Colognato et al.; 2008 [ |
| Al2O3 | nanoparticles | CHO-K1 cells | MN frequencies increase at 0.5 and 1 | Di Virgillio et al.; 2010 [ |
| TiO2 | rutile/anatase | Human bronchial epithelial cells (BEAS 2B) with 1–100 | Both induce DNA damage at all treatment times. Only nanosize rutile increase frequency of MN cells at 10, 60 | Falck et al.; 2009 [ |
| TiO2 | with p,p′-DDT | Human embryo L-02 hepatocyte 0.01, 0.1, 1 | TiO2 enhances | Shi et al.; 2010 [ |
| TiO2 | 2–30 nm (mean at 15 nm) | NIH3T3 human fibroblasts HFW cells | Short-term increased cell survival and growth. Long-term G2/M delay and slower cell-division with aberrant multipolar spreads. Overall disturbance in cell-cycle progression, duplicate | Huang et al.; 2009 [ |
| Cell-cycle analysis | ||||
| TiO2 | anatase <100 nm | Human lung fibroblasts IMR-90 and BEAS-2B cells | TiO2 treatment showed no DNA breakage, DNA adduct nor free radical generation. Fe2O3 had significant DNA damage after 24 h in IMR-90 cells | Bhattacharya et al.; 2009 [ |
| TiO2 | nanoparticles | Mouse primary embryo fibroblasts | Increased mutation yield and induces kilo-based pair deletion mutations in transgenic mouse cells. Dose-dependent formation of ONOO− | Xu et al.; 2009 [ |
| TiO2 | 100 nm | Human lymphoblastoid cells. Treatment with 26, 65, 130 | 130 | Wang et al.; 2007 [ |
| ZnO | nanospheres | Human epidermal cell line (A431) | Significant DNA damage in comet assay. Induces oxidative stress | Sharma et al.; 2009 [ |
| Ag | 30 nm, nanospheres | Medaka fish cell lines | Chromosomal aberration and aneuploidy | Wise et al.; 2010 [ |
| Ag | 6–20 nmstarch coated | IMR-90 and human glioblastoma cells U251 | DNA aberrations more prominent in cancer cells with more chromosomal aberrations. | Asharani et al.; 2009 [ |
| Ag | 25 nm | Mouse embryonic stem cells and embryonic fibroblasts Immuno blot Immunoflorescence | Upregulation of p53, Rad 51 and phosphorylated H2AX protein expression. Coated AgNP show more severe damage than uncoated AgNP | Ahamed et al.; 2008 [ |
| Au | 20 nm | Human fetal lung fibroblasts cells (MRC-5) treated with nAu at 0, | Significant DNA damage in 1 nm treatment compared to control. | Li et al.; 2008 [ |
| Platinum (Pt NP) | 5–8 nm capped with poly-vinyl alcohol | Human cell line | p53 activation, p21 downregulation. Increase of DNA damage, arrest at cell-cycle S phase and apoptosis | Asharani et al.; 2010 [ |
| Nanoceria (CeO2) | nanoparticles | Human lens epithelial cells at 5, 10 | No DNA damage nor SCE | Pierscionek et al.; 2010 [ |
| Polymer NP | lyophilized PELGE and PLGAnp | CHO cells | No significant difference in MN assay and no cell-cycle delay. SCE found to be higher in 5 kinds of PELGE-NP than in negative controls | He et al.; 2009 [ |