THERMODYNAMIC STUDY OF CERIUM OXIDE NANOPARTICLES AND THEIR EFFECTS ON CELLULAR METABOLISM

S. Joseph, Maxwell Jani, Vijay Mohakar, A. Sorkin, V. Reukov
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Abstract

Oxidative stress is associated with a large range of health conditions. It is caused by the accumulation of reactive oxidative species above cellular neutralization capability. Cells generally defend against oxidative stress with ROS decomposing enzymes such as superoxide dismutase and catalase. Cerium oxide nanoparticles display activity that mimics superoxide dismutase and catalase antioxidative properties, allowing them to combat oxidative stress. Oxidative stress can impair the mitochondrial function and energy output of cells, which can be measured as heat with closed ampoule isothermal microcalorimetry. Thermodynamic analysis of the cell’s response to nanoceria treatment can help improve understanding of its general medical applications. Murine macrophages of the RAW264.7 cell line were cultured in 10% FBS supplemented DMEM media with 1% AA until it reached 90-95% confluency monitored by the EVOS M5000 microscope. After establishing a baseline heat output for healthy cells using a TAM-III isothermal microcalorimeter, the heat flow was measured in cells under induced oxidative stress. MTT assay was performed with various concentrations of nanoceria to identify the optimal dosage at which its antioxidative properties are most effective. In this study, we described the effect of nanoceria on mitochondrial activity.
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氧化铈纳米颗粒的热力学研究及其对细胞代谢的影响
氧化应激与多种健康状况有关。它是由超过细胞中和能力的反应性氧化物质的积累引起的。细胞通常通过ROS分解酶如超氧化物歧化酶和过氧化氢酶来抵御氧化应激。氧化铈纳米颗粒显示出类似超氧化物歧化酶和过氧化氢酶抗氧化特性的活性,使其能够对抗氧化应激。氧化应激会损害细胞的线粒体功能和能量输出,这可以用封闭安瓿等温微量热法作为热量来测量。对细胞对纳米二氧化铈处理的反应进行热力学分析可以帮助提高对其一般医学应用的理解。将RAW264.7细胞系的小鼠巨噬细胞在含有1%AA的10%FBS补充的DMEM培养基中培养,直到通过EVOS M5000显微镜监测其达到90-95%的融合度。在使用TAM-III等温微量热量计建立健康细胞的基线热输出后,在诱导的氧化应激下测量细胞中的热流。用不同浓度的纳米氧化铈进行MTT测定,以确定其抗氧化性能最有效的最佳剂量。在这项研究中,我们描述了纳米氧化铈对线粒体活性的影响。
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