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Optimization and Evaluation of Pretreatment Method for sp-ICP-MS to Reveal the Distribution of Silver Nanoparticles in the Body

机译:sp-ICP-MS揭示体内银纳米颗粒分布的预处理方法的优化与评价

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摘要

The prevalent use of engineered nanoparticles (ENPs) has increased our exposure to these particles. The current available analytical techniques fail to simultaneously quantify and analyze the physical properties of ENPs in biological tissues. Therefore, new methods are required to evaluate the exposure conditions to ENPs. Single particle inductively coupled plasma-mass spectrometry (sp-ICP-MS) is an attractive approach that can perform quantitative and qualitative analyses of ENPs. However, the application of this approach for biological samples is limited because of the lack of pretreatment methods for effectively recovering ENPs from biological tissues. In this study, we evaluated various pretreatment methods and identified the optimal pretreatment conditions for sp-ICP-MS analyses of ENPs in biological tissues using silver nanoparticles (nAg) as a model. We screened five reagents as pretreatment solvents (sodium hydroxide, tetramethylammonium hydroxide, nitric acid, hydrochloric acid, and proteinase K). Our results showed that treatment with sodium hydroxide was optimal for detecting nAg in the mouse liver. Moreover, this pretreatment method can be applied to other organs, such as the heart, lung, spleen, and kidney. Finally, we evaluated the applicability of this method by analyzing the quantity and physical properties of silver in the mouse blood and liver, after intravenous administration of nAg or silver ion. Our sp-ICP-MS method revealed that nAg administered into the blood was partially ionized and tended to be distributed in the particle form (approximately 80%) in the liver and in ionic form (approximately 95%) in the blood. In conclusion, we optimized pretreatment strategies for sp-ICP-MS evaluation of ENPs in biological tissues and demonstrated its applicability by evaluating the changes in the physical properties of nAg in the liver and blood. We also showed that partial changes from the particle form to the ionic form of nAg influences their kinetics and distribution when administered to mice.
机译:工程纳米颗粒(ENP)的普遍使用增加了我们对这些颗粒的接触。当前可用的分析技术无法同时量化和分析生物组织中ENP的物理性质。因此,需要新的方法来评估ENP的暴露条件。单粒子电感耦合等离子体质谱法(sp-ICP-MS)是一种有吸引力的方法,可以对ENP进行定量和定性分析。但是,由于缺乏从生物组织中有效回收ENP的预处理方法,该方法在生物样品中的应用受到了限制。在这项研究中,我们评估了各种预处理方法,并确定了使用银纳米颗粒(nAg)作为模型对生物组织中的ENP进行sp-ICP-MS分析的最佳预处理条件。我们筛选了五种试剂作为预处理溶剂(氢氧化钠,氢氧化四甲铵,硝酸,盐酸和蛋白酶K)。我们的结果表明,用氢氧化钠处理最适合检测小鼠肝脏中的nAg。而且,该预处理方法可以应用于其他器官,例如心脏,肺,脾脏和肾脏。最后,我们分析了静脉注射nAg或银离子后,小鼠血液和肝脏中银的数量和物理性质,从而评估了该方法的适用性。我们的sp-ICP-MS方法显示,注入血液的nAg部分被离子化,并倾向于以颗粒形式(约80%)分布在肝脏中,并以离子形式(约95%)分布在血液中。总之,我们优化了sp-ICP-MS评估生物组织中ENP的预处理策略,并通过评估肝脏和血液中nAg物理性质的变化证明了其适用性。我们还表明,当将nAg从颗粒形式转变为离子形式时,部分改变会影响其动力学和分布。

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