Real-Time Visualization of Endogenous H2O2 Production in Mammalian Spheroids by Electrochemiluminescence

Vanshika Gupta, Francesco Falciani, Brady R. Layman, Megan L. Hill, Stefania Rapino* and Jeffrey E. Dick*, 
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引用次数: 0

Abstract

Two-dimensional cell culture may be insufficient when it comes to understanding human disease. The redox behavior of complex, three-dimensional tissue is critical to understanding disease genesis and propagation. Unfortunately, few measurement tools are available for such three-dimensional models to yield quantitative insight into how reactive oxygen species (ROS) form over time. Here, we demonstrate an imaging platform for the real-time visualization of H2O2 formation for mammalian spheroids made of noncancerous human embryonic kidney cells (HEK-293) and metastatic breast cancer cells (MCF-7 and MDA-MB-231). We take advantage of the luminol and H2O2 electrochemiluminescence reaction on a transparent tin-doped indium oxide electrode. The luminescence of this reaction as a function of [H2O2] is linear (R2 = 0.98) with a dynamic range between 0.5 μM to 0.1 mM, and limit of detection of 2.26 ± 0.58 μM. Our method allows for the observation of ROS activity in growing spheroids days in advance of current techniques without the need to sacrifice the sample postanalysis. Finally, we use our procedure to demonstrate how key ROS pathways in cancerous spheroids can be up-regulated and downregulated through the addition of common metabolic drugs, rotenone and carbonyl cyanide-p-trifluoromethoxyphenylhydrazone. Our results suggest that the Warburg Effect can be studied for single mammalian cancerous spheroids, and the use of metabolic drugs allows one to implicate specific metabolic pathways in ROS formation. We expect this diagnostic tool to have wide applications in understanding the real-time propagation of human disease in a system more closely related to human tissue.

利用电化学发光技术实时可视化哺乳动物球体内源性H2O2生成
在了解人类疾病方面,二维细胞培养可能是不够的。复杂的三维组织的氧化还原行为对理解疾病的发生和传播至关重要。不幸的是,很少有测量工具可用于这种三维模型,以定量了解活性氧(ROS)如何随时间形成。在这里,我们展示了一个用于实时可视化由非癌性人胚胎肾细胞(HEK-293)和转移性乳腺癌细胞(MCF-7和MDA-MB-231)组成的哺乳动物球体H2O2形成的成像平台。我们利用发光氨和H2O2在透明锡掺杂氧化铟电极上的电化学发光反应。该反应的发光与[H2O2]呈线性关系(R2 = 0.98),动态范围为0.5 μM ~ 0.1 mM,检出限为2.26±0.58 μM。我们的方法允许在生长的球体中观察ROS活性,比当前技术提前几天,而不需要牺牲样品的后分析。最后,我们使用我们的程序来演示如何通过添加常见的代谢药物,鱼tenone和羰基氰化物-对三氟甲氧基苯腙上调和下调癌球体中的关键ROS通路。我们的研究结果表明,Warburg效应可以在单个哺乳动物癌性球体中进行研究,并且使用代谢药物可以在ROS形成中暗示特定的代谢途径。我们期望这种诊断工具在了解人类疾病在与人体组织更密切相关的系统中的实时传播方面具有广泛的应用。
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来源期刊
Chemical & Biomedical Imaging
Chemical & Biomedical Imaging 化学与生物成像-
CiteScore
1.00
自引率
0.00%
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0
期刊介绍: Chemical & Biomedical Imaging is a peer-reviewed open access journal devoted to the publication of cutting-edge research papers on all aspects of chemical and biomedical imaging. This interdisciplinary field sits at the intersection of chemistry physics biology materials engineering and medicine. The journal aims to bring together researchers from across these disciplines to address cutting-edge challenges of fundamental research and applications.Topics of particular interest include but are not limited to:Imaging of processes and reactionsImaging of nanoscale microscale and mesoscale materialsImaging of biological interactions and interfacesSingle-molecule and cellular imagingWhole-organ and whole-body imagingMolecular imaging probes and contrast agentsBioluminescence chemiluminescence and electrochemiluminescence imagingNanophotonics and imagingChemical tools for new imaging modalitiesChemical and imaging techniques in diagnosis and therapyImaging-guided drug deliveryAI and machine learning assisted imaging
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