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Gold nanoparticles induce transcriptional activity of NF-κB in a B-lymphocyte cell line

机译:金纳米粒子诱导转录活动的NF -κB淋巴球细胞线

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摘要

Gold nanoparticles (Au-NPs) have been designated as superior tools for biological applications owing to their characteristic surface plasmon absorption/scattering and amperometric (electron transfer) properties, in conjunction with low or no immediate toxicity towards biological systems. Many studies have shown the ease of designing application-based tools using Au-NPs but the interaction of this nanosized material with biomolecules in a physiological environment is an area requiring deeper investigation. Immune cells such as lymphocytes circulate through the blood and lymph and therefore are likely cellular components to come in contact with Au-NPs. The main aim of this study was to mechanistically determine the functional impact of Au-NPs on B-lymphocytes. Using a murine B-lymphocyte cell line (CH12.LX), treatment with citrate-stabilized 10 nm Au-NPs induced activation of an NF-κB-regulated luciferase reporter, which correlated with altered B lymphocyte function (i.e. increased antibody expression). TEM imaging demonstrated that Au-NPs can pass through the cellular membrane and therefore could interact with intracellular components of the NF-kB signaling pathway. Based on the inherent property of Au-NPs to bind to -thiol groups and the presence of cysteine residues on the NF-kB signal transduction proteins IκB kinases (IKK), proteins specifically bound to Au-NPs were extracted from CH12.LX cellular lysate exposed to 10 nm Au-NPs. Electrophoresis identified several bands, of which IκBα and IKKp were immunoreactive. Further evaluation revealed activation of the canonical NF-κB signaling pathway as evidenced by IκBα phosphorylation at serine residues 32 and 36 followed by IκBα degradation and increased nuclear RelA. Additionally, expression of an IκBα super-repressor (resistant to proteasomal degradation) reversed Au-NP-induced NF-κB activation. Altered NF-kB signaling and cellular function in B-lymphocytes suggests a potential for off-target effects with In vivo applications of gold nanomaterials and underscores the need for more studies evaluating the interactions of nanomaterials with biomolecules and cellular components.
机译:金纳米粒子(Au-NPs)指定优越的生物应用工具由于其表面等离子体特征吸收、散射和电流(电子或转让)属性,结合低没有立即对生物系统毒性。许多研究表明设计的难易程度使用Au-NPs但基于应用程序的工具相互作用的纳米材料生物分子在生理环境中是一个需要更深层次的研究领域。如淋巴细胞通过血液循环和淋巴,因此很可能细胞组件接触Au-NPs。本研究的主要目的是机械化确定Au-NPs的功能影响淋巴细胞。与citrate-stabilized线(CH12.LX)、治疗10 nm Au-NPs诱导激活的NF -κB-regulated荧光素酶记者与B淋巴细胞功能改变有关(即增加抗体表达)。证明Au-NPs可以通过细胞膜,因此可以进行交互NF-kB与细胞内的组件信号通路。的Au-NPs绑定到硫醇和组半胱氨酸残基的存在NF-kB信号转导蛋白IκB激酶(IKK),蛋白质特别是绑定到Au-NPs提取CH12。电泳确定几个乐队B我κα和IKKp免疫反应性的。评估显示激活的规范化NF -κB信号通路就是明证我ακB磷酸化丝氨酸残基32、36随后我κBα退化和增加核RelA。super-repressor(抗蛋白酶体退化)逆转Au-NP-induced NF -κB激活。功能细胞表明潜力与体内应用脱靶效应金纳米材料和凸显了需要更多的研究评估的相互作用纳米材料与生物分子和细胞组件。

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