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On-chip real-time detection and quantification of reactive oxygen species in MCF-7 cells through an in-house built fluorescence microscope

机译:通过内部内置荧光显微镜通过内部内置MCF-7细胞中活性氧物种的片上实时检测和定量

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Reactive oxygen species (ROS) are formed by several different reactions and play a major role in cell cycling and as a messenger in normal cell transduction and have diverse biological effects when high in concentration. ROS may trigger DNA damage, cell mutation, inflammation, cell proliferation, and ultimately they may induce carcinogenesis. This study aims to design, fabricate, and develop a novel on-chip ROS detection based on mounted in-house built fluorescence microscope in microfluidics, which has not been reported previously. An inhouse 3D printed built digital portable fluorescence type microscope for on-chip ROS detection has been developed. The combined use of the fluorescence microscope and a glass-based microfluidic chip both enabled to provide high-quality images of the living cells with ease of controlling and handling of the biological sample. As an evidence of the fluorescence microscope, breast cancer cells were loaded with 2 ',7 '-dichlorofluorescein diacetate (DCFDA, 50 mu M) for 45 min on-chip which produces green fluorescence upon reaction with intracellular ROS. Fluorescence of the MCF-7 cells has been captured to obtain a profile of ROS generation for 1 day. LabVIEW 2019 was used along with its high-performance image analysis and IMAQ Vision tools. The viability of the cells was performed by LIVE/DEAD assay and Luna cell counter. The developed platform provides real-time monitoring and quantification of ROS. A strong linear correlation between concentrations versus fluorescence has been recorded. This result recommends that the current microfluidic chip provides an in-vitro platform for the assessment of cell cycle progression and evaluation of the variety of drugs.
机译:反应性氧物质(ROS)由几种不同的反应形成,并在细胞循环中发挥主要作用,并作为正常细胞转导的信使,并且在浓度高时具有不同的生物效应。 ROS可能会触发DNA损伤,细胞突变,炎症,细胞增殖,最终它们可能会诱导致癌作用。本研究旨在基于在微流体中安装的内部内置荧光显微镜的设计,制造和开发一种新的片上ROS检测,所述荧光显微镜在微流体中尚未报道。已经开发出用于片上ROS检测的Inhouse 3D印刷数字便携式荧光型显微镜。荧光显微镜和基于玻璃的微流体芯片的结合使用能够提供活细胞的高质量图像,轻松控制和处理生物样品。作为荧光显微镜的证据,乳腺癌细胞用2',7'-二氯荧光素二乙酸酯(DCFDA,50μm)加载45分钟,在与细胞内ROS反应时产生绿色荧光。已经捕获MCF-7细胞的荧光以获得1天的ROS生成的剖面。 LabVIEW 2019与其高性能图像分析和IMAQ视觉工具一起使用。通过活/死导和LUNA细胞计数器进行细胞的可行性。开发平台提供ROS的实时监控和量化。记录了浓度与荧光之间的强烈线性相关性。该结果建议目前的微流体芯片提供了用于评估细胞周期进展和对各种药物评估的体外平台。

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