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Bringing the light to High Throughput Screening: use of optogenetic tools for the development of recombinant cellular assays

机译:揭开高通量筛选的面纱:使用光遗传学工具开发重组细胞测定法

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The use of light-activated proteins represents a powerful tool to control biological processes with high spatial and temporal precision. These so called "optogenetic" technologies have been successfully validated in many recombinant systems, and have been widely applied to the study of cellular mechanisms in intact tissues or behaving animals; to do that, complex, high-intensity, often home-made instrumentations were developed to achieve the optimal power and precision of light stimulation. In our study we sought to determine if this optical modulation can be obtained also in a miniaturized format, such as a 384-well plate, using the instrumentations normally dedicated to fluorescence analysis in High Throughput Screening (HTS) activities, such as for example the FLIPR (Fluorometric Imaging Plate Reader) instrument. We successfully generated optogenetic assays for the study of different ion channel targets: the CaV1.3 calcium channel was modulated by the light-activated Channelrhodopsin-2, the HCN2 cyclic nucleotide gated (CNG) channel was modulated by the light activated bPAC adenylyl cyclase, and finally the genetically encoded voltage indicator ArcLight was efficiently used to measure potassium, sodium or chloride channel activity. Our results showed that stable, robust and miniaturized cellular assays can be developed using different optogenetic tools, and efficiently modulated by the FLIPR instrument LEDs in a 384-well format. The spatial and temporal resolution delivered by this technology might enormously advantage the early stages of drug discovery, leading to the identification of more physiological and effective drug molecules.
机译:光活性蛋白的使用代表了一种强大的工具,可以控制具有高空间和时间精度的生物过程。这些所谓的“OptoCeric”技术已经在许多重组系统中成功验证,并且已被广泛应用于完整组织或表现动物的细胞机制的研究;为此,复杂,高强度,通常是自制的仪器,以实现光刺激的最佳功率和精度。在我们的研究中,我们寻求确定该光学调制是否也可以以小型化格式(例如384孔板)获得,所述光学调制也可以使用通常专注于高通量筛选(HTS)活动的荧光分析的仪器,例如诸如FLIPR(荧光成像板读数器)仪器。我们成功地生成了对不同离子通道靶标的研究的致敏测定:CAV1.3钙通道通过光激活的通道 - 2,通过光活化的BPAC腺苷酸环酶调节HCN2环状核苷酸门控(CNG)通道,最后,遗传编码的电压指示器芳曲线有效地用于测量钾,钠或氯化物通道活性。我们的研究结果表明,可以使用不同的光源工具开发稳定,鲁棒和小型化的蜂窝测定,并通过FLIPR仪器LED以384孔格式进行有效调制。通过该技术提供的空间和时间分辨率可能极大地优化药物发现的早期阶段,导致鉴定更具生理和有效的药物分子。

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