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首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >Investigation of noble metal nanoparticle ζ-potential effects on single-cell exocytosis function in vitro with carbon-fiber microelectrode amperometry
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Investigation of noble metal nanoparticle ζ-potential effects on single-cell exocytosis function in vitro with carbon-fiber microelectrode amperometry

机译:碳纤维微电极安培法研究贵金属纳米颗粒ζ-电势对体外单细胞胞吐功能的影响

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摘要

Since noble metal nanoparticles are increasingly found in consumer goods, there is a need for information about potential impacts of these nanoparticles on cellular function to avoid environmental and health risks associated with exposure. In this study, spherical Au and Ag nanoparticles of similar size were synthesized and modified to assess the effects of ζ-potential on immune cell function. Nanoparticle ζ-potential was controlled by employing surfactant exchange to generate nanoparticles with positive or negative surface charge. Mouse peritoneal mast cells (MPMCs) were then exposed to 5-15 g ml ~(-1) of these nanomaterials, and uptake was assessed by inductively coupled plasma-atomic emission spectroscopy (ICP-AES). Uptake for positively charged nanoparticles was more efficient than for negatively charged nanomaterials, and all nanoparticles were taken up in a concentration-dependent manner. Following uptake, MPMC degranulation function was assessed using carbon-fiber microelectrode amperometry (CFMA), showing decreased quantal secretion of serotonin by MPMCs exposed to the positively charged Au nanoparticles and negatively charged Ag nanoparticles. The overall efficiency of the degranulation process (indicated by amperometric spike frequency) decreased for all Au-exposed MPMCs. However, only the negatively charged version of the Ag nanomaterial resulted in decreased MPMC degranulation efficiency. Further studies revealed that ionic Ag was partially responsible for the observed effects. Overall, these studies reveal the complex nature of interactions between noble metal nanomaterials and cells that result in perturbed cellular function and illustrate the necessity of thorough nanoparticle characterization for interpretation of cellular function assays.
机译:由于贵金属纳米颗粒越来越多地出现在消费品中,因此需要有关这些纳米颗粒对细胞功能的潜在影响的信息,以避免与暴露有关的环境和健康风险。在这项研究中,合成并修饰了大小相似的球形Au和Ag纳米颗粒,以评估ζ电位对免疫细胞功能的影响。通过采用表面活性剂交换来控制纳米粒子的ζ电位,以产生具有正或负表面电荷的纳米粒子。然后将小鼠腹膜肥大细胞(MPMC)暴露于5-15 g ml〜(-1)的这些纳米材料中,并通过电感耦合等离子体原子发射光谱法(ICP-AES)评估摄取。带正电的纳米颗粒的吸收比带负电的纳米材料更有效,并且所有纳米颗粒都以浓度依赖的方式吸收。摄取后,使用碳纤维微电极安培法(CFMA)评估了MPMC的脱粒功能,显示暴露于带正电的Au纳米颗粒和带负电的Ag纳米颗粒的MPMC降低了血清素的定量分泌。对于所有暴露于金的MPMC,脱粒过程的总体效率(由安培尖峰频率指示)降低。然而,仅带负电的Ag纳米材料导致MPMC脱粒效率降低。进一步的研究表明,离子型银部分负责观察到的效果。总体而言,这些研究揭示了贵金属纳米材料与细胞之间相互作用的复杂性质,导致细胞功能受到干扰,并说明了对细胞功能测定进行全面纳米表征的必要性。

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