Differential regulation of intracellular factors mediating cell cycle, DNA repair and inflammation following exposure to silver nanoparticles in human cells.

Q4 Biochemistry, Genetics and Molecular Biology Genome Integrity Pub Date : 2012-02-10 DOI:10.1186/2041-9414-3-2
Pv Asharani, Swaminathan Sethu, Hui Kheng Lim, Ganapathy Balaji, Suresh Valiyaveettil, M Prakash Hande
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引用次数: 133

Abstract

Background: Investigating the cellular and molecular signatures in eukaryotic cells following exposure to nanoparticles will further our understanding on the mechanisms mediating nanoparticle induced effects. This study illustrates the molecular effects of silver nanoparticles (Ag-np) in normal human lung cells, IMR-90 and human brain cancer cells, U251 with emphasis on gene expression, induction of inflammatory mediators and the interaction of Ag-np with cytosolic proteins.

Results: We report that silver nanoparticles are capable of adsorbing cytosolic proteins on their surface that may influence the function of intracellular factors. Gene and protein expression profiles of Ag-np exposed cells revealed up regulation of many DNA damage response genes such as Gadd 45 in both the cell types and ATR in cancer cells. Moreover, down regulation of genes necessary for cell cycle progression (cyclin B and cyclin E) and DNA damage response/repair (XRCC1 and 3, FEN1, RAD51C, RPA1) was observed in both the cell lines. Double strand DNA damage was observed in a dose dependant manner as evidenced in γH2AX foci assay. There was a down regulation of p53 and PCNA in treated cells. Cancer cells in particular showed a concentration dependant increase in phosphorylated p53 accompanied by the cleavage of caspase 3 and PARP. Our results demonstrate the involvement of NFκB and MAP kinase pathway in response to Ag-np exposure. Up regulation of pro-inflammatory cytokines such as interleukins (IL-8, IL-6), macrophage colony stimulating factor, macrophage inflammatory protein in fibroblasts following Ag-np exposure were also observed.

Conclusion: In summary, Ag-np can modulate gene expression and protein functions in IMR-90 cells and U251 cells, leading to defective DNA repair, proliferation arrest and inflammatory response. The observed changes could also be due to its capability to adsorb cytosolic proteins on its surface.

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人细胞中银纳米颗粒暴露后介导细胞周期、DNA修复和炎症的细胞内因子的差异调节。
背景:研究真核细胞暴露于纳米颗粒后的细胞和分子特征,将进一步加深我们对纳米颗粒诱导效应的机制的理解。本研究阐明了银纳米粒子(Ag-np)在正常人肺细胞、IMR-90和人脑癌细胞U251中的分子作用,重点是基因表达、炎症介质的诱导以及Ag-np与细胞质蛋白的相互作用。结果:我们报道了银纳米颗粒能够在其表面吸附胞质蛋白,这可能会影响细胞内因子的功能。Ag-np暴露细胞的基因和蛋白表达谱显示,在癌细胞类型和ATR中,许多DNA损伤反应基因(如gadd45)均上调。此外,在这两种细胞系中都观察到细胞周期进程所需的基因(cyclin B和cyclin E)和DNA损伤反应/修复(XRCC1和3,FEN1, RAD51C, RPA1)的下调。在γ - h2ax聚焦实验中,观察到双链DNA损伤呈剂量依赖性。细胞中p53和PCNA表达下调。特别是癌细胞显示出磷酸化p53的浓度依赖性增加,并伴随着caspase 3和PARP的裂解。我们的研究结果表明,nf - κ b和MAP激酶途径参与了Ag-np暴露的反应。Ag-np暴露后,成纤维细胞中白细胞介素(IL-8、IL-6)、巨噬细胞集落刺激因子、巨噬细胞炎症蛋白等促炎细胞因子的上调也被观察到。结论:综上所述,Ag-np可调节IMR-90细胞和U251细胞的基因表达和蛋白功能,导致DNA修复缺陷、增殖阻滞和炎症反应。观察到的变化也可能是由于其表面吸附细胞质蛋白的能力。
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Genome Integrity
Genome Integrity Biochemistry, Genetics and Molecular Biology-Genetics
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