首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Application of Genetically Encoded Fluorescent Nitric Oxide (NO•) Probes the geNOps for Real-time Imaging of NO• Signals in Single Cells
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Application of Genetically Encoded Fluorescent Nitric Oxide (NO•) Probes the geNOps for Real-time Imaging of NO• Signals in Single Cells

机译:基因编码的荧光一氧化氮(ge•)探针geNOps用于单细胞中NO•信号的实时成像

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摘要

Nitric Oxide (NO•) is a small radical, which mediates multiple important cellular functions in mammals, bacteria and plants. Despite the existence of a large number of methods for detecting NO• in vivo and in vitro, the real-time monitoring of NO• at the single-cell level is very challenging. The physiological or pathological effects of NO• are determined by the actual concentration and dwell time of this radical. Accordingly, methods that allow the single-cell detection of NO• are highly desirable. Recently, we expanded the pallet of NO• indicators by introducing single fluorescent protein-based genetically encoded nitric oxide (NO•) probes (geNOps) that directly respond to cellular NO• fluctuations and, hence, addresses this need. Here we demonstrate the usage of geNOps to assess intracellular NO• signals in response to two different chemical NO•-liberating molecules. Our results also confirm that freshly prepared 3-(2-hydroxy-1-methyl-2-nitrosohydrazino)-N-methyl-1-propanamine (NOC-7) has a much higher potential to evoke change in intracellular NO• levels as compared with the inorganic NO• donor sodium nitroprusside (SNP). Furthermore, dual-color live-cell imaging using the green geNOps (G-geNOp) and the chemical Ca2+ indicator fura-2 was performed to visualize the tight regulation of Ca2+-dependent NO• formation in single endothelial cells. These representative experiments demonstrate that geNOps are suitable tools to investigate the real-time generation and degradation of single-cell NO• signals in diverse experimental setups.
机译:一氧化氮(NO•)是一个小自由基,可在哺乳动物,细菌和植物中介导多种重要的细胞功能。尽管存在大量用于体内和体外检测NO•的方法,但是在单细胞水平上实时监测NO•仍然非常具有挑战性。 NO•的生理或病理影响取决于该自由基的实际浓度和停留时间。因此,非常需要允许单细胞检测NO·的方法。最近,我们通过引入可直接响应细胞NO•波动的基于荧光蛋白的基因编码一氧化氮(NO•)探针(geNOps),扩展了NO•指标的种类,从而满足了这一需求。在这里,我们证明了使用geNOps来评估细胞内NO•信号对两种不同的化学释放NO•分子的响应。我们的结果还证实,新鲜制备的3-(2-羟基-1-甲基-2-亚硝基肼基)-N-甲基-1-丙胺(NOC-7)与引起细胞内NO•水平变化相比具有更高的潜力。与无机NO•供体硝普钠(SNP)。此外,使用绿色geNOps(G-geNOp)和化学Ca 2 + 指示剂fura-2进行双色活细胞成像,以观察Ca 2+ < / sup>依赖的NO•在单个内皮细胞中的形成。这些具有代表性的实验表明,geNOps是研究各种实验设置中单细胞NO•信号实时生成和降解的合适工具。

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