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Graphene Oxide-Silver Nanoparticle Nanocomposites Induce Oxidative Stress and Aberrant Methylation in Caprine Fetal Fibroblast Cells

Overview
Journal Cells
Publisher MDPI
Date 2021 Apr 3
PMID 33808775
Citations 15
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Abstract

Graphene oxide-silver nanoparticle (GO-AgNPs) nanocomposites have drawn much attention for their potential in biomedical uses. However, the potential toxicity of GO-AgNPs in animals and humans remains unknown, particularly in the developing fetus. Here, we reported the GO-AgNP-mediated cytotoxicity and epigenetic alteration status in caprine fetal fibroblast cells (CFFCs). In brief, the proliferation and apoptosis rate of GO-AgNP-treated CFFCs (4 and 8 µg/mL of GO-AgNPs) were measured using the cell-counting kit (CCK-8) assay and the annexin V/propidium iodide (PI) assay, respectively. In addition, the oxidative stress induced by GO-AgNPs and detailed mechanisms were studied by evaluating the generation of reactive oxygen species (ROS), superoxide dismutase (SOD), lactate dehydrogenase (LDH), malondialdehyde (MDA), and caspase-3 and abnormal methylation. The expression of pro- and anti-apoptotic genes and DNA methyltransferases was measured using reverse transcription followed by RT-qPCR. Our data indicated that GO-AgNPs cause cytotoxicity in a dose-dependent manner. GO-AgNPs induced significant cytotoxicity by the loss of cell viability, production of ROS, increasing leakage of LDH and level of MDA, increasing expression of pro-apoptotic genes, and decreasing expression of anti-apoptotic genes. GO-AgNPs incited DNA hypomethylation and the decreased expression of . Taken together, this study showed that GO-AgNPs increase the generation of ROS and cause apoptosis and DNA hypomethylation in CFFCs. Therefore, the potential applications of GO-AgNPs in biomedicine should be re-evaluated.

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References
1.
Mytych J, Zebrowski J, Lewinska A, Wnuk M . Prolonged Effects of Silver Nanoparticles on p53/p21 Pathway-Mediated Proliferation, DNA Damage Response, and Methylation Parameters in HT22 Hippocampal Neuronal Cells. Mol Neurobiol. 2016; 54(2):1285-1300. PMC: 5310673. DOI: 10.1007/s12035-016-9688-6. View

2.
Ivask A, Voelcker N, Seabrook S, Hor M, Kirby J, Fenech M . DNA melting and genotoxicity induced by silver nanoparticles and graphene. Chem Res Toxicol. 2015; 28(5):1023-35. DOI: 10.1021/acs.chemrestox.5b00052. View

3.
Zhang X, Choi Y, Han J, Kim E, Park J, Gurunathan S . Differential nanoreprotoxicity of silver nanoparticles in male somatic cells and spermatogonial stem cells. Int J Nanomedicine. 2015; 10:1335-57. PMC: 4337509. DOI: 10.2147/IJN.S76062. View

4.
Zhang X, Gurunathan S, Kim J . Effects of silver nanoparticles on neonatal testis development in mice. Int J Nanomedicine. 2015; 10:6243-56. PMC: 4599714. DOI: 10.2147/IJN.S90733. View

5.
Lopes I, de Oliveira I, Bargi-Souza P, Cavallin M, Kolc C, Khalil N . Effects of Silver Nanoparticle Exposure to the Testicular Antioxidant System during the Prepubertal Rat Stage. Chem Res Toxicol. 2019; 32(6):986-994. DOI: 10.1021/acs.chemrestox.8b00281. View