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A Multidisciplinary Approach toward High Throughput Label-Free Cytotoxicity Monitoring of Superparamagnetic Iron Oxide Nanoparticles

机译:多学科方法对超顺磁性氧化铁纳米颗粒的高通量无标记细胞毒性监测

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摘要

This paper focuses on cytotoxicity examination of superparamagnetic iron oxide nanoparticles (SPIONs) using different methods, including impedance spectroscopy. Recent advances of SPIONs for clinical and research applications have triggered the need to understand their effects in cells. Despite the great advances in adapting various biological and chemical methods to assess in-vitro toxicity of SPIONs, less attention has been paid on the development of a high throughput label-free screening platform to study the interaction between the cells and nanoparticles including SPIONs. In this paper, we have taken the first step toward this goal by proposing a label-free impedimetric method for monitoring living cells treated with SPIONs. We demonstrate the effect of SPIONs on the adhesion, growth, proliferation, and viability of neuroblastoma 2A (N2a) cells using impedance spectroscopy as a label-free method, along with other standard microscopic and cell viability testing methods as control methods. Our results have shown a decreased viability of the cells as the concentration of SPIONs increases with percentages of 59%, 47%, and 40% for 100 µg/mL (C4), 200 µg/mL (C5), 300 µg/mL (C6), respectively. Although all SPIONs concentrations have allowed the growth of cells within 72 h, C4, C5, and C6 showed slower growth compared to the control (C1). The growth and proliferation of N2a cells are faster in the absence or low concentration of SPIONS. The percent coefficient of variation (% CV) was used to compare cell concentrations obtained by TBDE assay and a Scepter cell counter. Results also showed that the lower the SPIONs concentration, the lower the impedance is expected to be in the sensing electrodes without the cells. Meanwhile, the variation of surface area (∆S) was affected by the concentration of SPIONs. It was observed that the double layer capacitance was almost constant because of the higher attachment of cells, the lower surface area coated by SPIONs. In conclusion, impedance changes of electrodes exposed to the mixture of cells and SPIONs offer a wide dynamic range (>1 MΩ using Electric Cell-substrate Impedance electrodes) suitable for cytotoxicity studies. Based on impedance based, viability testing and microscopic methods’ results, SPIONs concentrations higher than 100 ug/mL and 300 ug/mL cause minor and major effects, respectively. We propose that a high throughput impedance-based label-free platform provides great advantages for studying SPIONs in a cell-based context, opening a window of opportunity to design and test the next generation of SPIONs with reduced toxicity for biomedical or medical applications.
机译:本文着眼于使用不同方法(包括阻抗谱法)对超顺磁性氧化铁纳米粒子(SPIONs)的细胞毒性检查。 SPIONs在临床和研究应用中的最新进展引发了对了解其在细胞中作用的需求。尽管在适应各种生物学和化学方法以评估SPIONs的体外毒性方面取得了巨大进步,但对开发用于研究细胞与包括SPIONs在内的纳米颗粒之间相互作用的高通量无标签筛选平台的关注却很少。在本文中,我们朝着这个目标迈出了第一步,提出了一种无标记的阻抗法来监测用SPIONs处理的活细胞。我们证明了SPIONs对神经母细胞瘤2A(N2a)细胞的粘附,生长,增殖和活力的影响,使用阻抗谱作为一种无标记方法,以及其他标准的显微镜和细胞活力测试方法作为对照方法。我们的结果表明,对于100 µg / mL(C4),200 µg / mL(C5),300 µg / mL,当SPIONs浓度增加时,细胞活力降低,其百分比分别为59%,47%和40%( C6)。尽管所有SPIONs浓度均允许细胞在72小时内生长,但与对照(C1)相比,C4,C5和C6的生长较慢。在不存在或浓度低的SPIONS下,N2a细胞的生长和增殖更快。使用变异百分数系数(%CV)比较通过TBDE分析和Scepter细胞计数器获得的细胞浓度。结果还表明,SPIONs浓度越低,在没有细胞的情况下,感应电极中的阻抗越低。同时,表面积(∆S)的变化受SPIONs浓度的影响。观察到双层电容几乎恒定,这是因为单元格的附着力更高,SPION覆盖的表面积更低。总之,暴露于细胞和SPIONs混合物的电极的阻抗变化提供了适用于细胞毒性研究的宽动态范围(使用“细胞-细胞-基底阻抗”电极> 1MΩ)。根据阻抗,可行性测试和显微方法的结果,高于100 ug / mL和300 ug / mL的SPIONs浓度分别会产生轻微和重大影响。我们提出,基于高通量阻抗的无标签平台为在基于细胞的环境中研究SPION提供了很大的优势,为设计和测试下一代SPION在生物医学或医学应用中降低毒性提供了机会。

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