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Automated fluid delivery from multiwell plates to microfluidic devices for high-throughput experiments and microscopy

机译:自动流动从多孔板到微流体器件的自动递送,用于高通量实验和显微镜

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High-throughput biological and chemical experiments typically use either multiwell plates or microfluidic devices to analyze numerous independent samples in a compact format. Multiwell plates are convenient for screening chemical libraries in static fluid environments, whereas microfluidic devices offer immense flexibility in flow control and dynamics. Interfacing these platforms in a simple and automated way would introduce new high-throughput experimental capabilities, such as compound screens with precise exposure timing. Whereas current approaches to integrate microfluidic devices with multiwell plates remain expensive or technically complicated, we present here a simple open-source robotic system that delivers liquids sequentially through a single connected inlet. We first characterized reliability and performance by automatically delivering 96 dye solutions to a microfluidic device. Next, we measured odor dose-response curves of in vivo neural activity from two sensory neuron types in dozens of living C. elegans in a single experiment. We then identified chemicals that suppressed optogenetically-evoked neural activity, demonstrating a functional screening platform for neural modulation in whole organisms. Lastly, we automated an 85-minute, ten-step cell staining protocol. Together, these examples show that our system can automate various protocols and accelerate experiments by economically bridging two common elements of high-throughput systems: multiwell plates and microfluidics.
机译:高通量生物和化学实验通常使用多孔板或微流体器件以紧凑的形式分析许多独立样品。多孔板方便筛选静态流体环境中的化学文库,而微流体装置在流量控制和动力学中提供巨大的灵活性。以简单和自动化的方式接地这些平台将引入新的高通量实验功能,例如具有精确曝光正时的复合屏幕。尽管使用多孔板集成微流体器件的电流方法仍然昂贵或技术性复杂,但我们在这里展示了一个简单的开源机器人系统,可通过单个连接入口顺序地提供液体。我们首先通过将96染料溶液自动向微流体装置提供96染料溶液来表征可靠性和性能。接下来,我们在单一实验中测量了在几十个活的C.杆状杆线上的两种感官神经元类型中的体内神经活动的气味剂量 - 反应曲线。然后,我们鉴定了抑制了致敏性神经活动的化学品,证明了整个生物体中神经调节的功能性筛选平台。最后,我们自动化85分钟的十步细胞染色协议。这些例子表明,我们的系统可以通过经济地遍布高通量系统的两个常见元件来自动化各种协议并加速实验:多孔板和微流体。

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