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

机译:石墨烯氧化物 - 银纳米粒子纳米复合材料诱导甲状腺胎儿成纤维细胞中的氧化应激和异常甲基化

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摘要

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 DNMT3A. 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.
机译:石墨烯氧化物 - 银纳米粒子(GO-AGNPS)纳米复合材料对其在生物医学用途的潜力引起了很多关注。然而,动物和人类的Go-agnps的潜在毒性仍然是未知的,特别是在发育中的胎儿中。在这里,我们报道了己定胎儿成纤维细胞(CFFCs)中的Go-AgNP介导的细胞毒性和表观遗传改变状态。简而言之,使用细胞计数试剂盒(CCK-8)测定和膜蛋白V /碘化丙烯醚(PI)测量Go-Agnp处理的CFFCs(4和8μg/ mL)的增殖和凋亡率(4和8μg/ ml的Go-agnps)(PI分别测定。此外,通过评估反应性氧物质(ROS),超氧化物歧化酶(SOD),乳酸脱氢酶(LDH),丙二酸脱氢酶(MDA)和Caspase-3和Caspase-3和Caspase-3和Caspase-3和Caspase-3的产生,研究了由Go-agnps和细节机制诱导的氧化应激和细致的机制。异常甲基化。使用逆转录测量,测量逆转录和抗凋亡基因和DNA甲基转移酶的表达,然后测量RT-QPCR。我们的数据表明,Go-agnps以剂量依赖性方式引起细胞毒性。通过丧失细胞活力,ROS的产生,增加LDH和MDA水平,增加促凋亡基因的表达以及降低促凋亡基因的表达,以及降低促凋亡基因的表达的显着细胞毒性。 Go-agnps诱发DNA低甲基化和DNMT3a的表达降低。在一起,该研究表明,Go-agnps增加了RO的产生并导致CFFC中的细胞凋亡和DNA低甲基化。因此,应重新评估生物医学中的Go-Agnps的潜在应用。

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