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Advancement of analytical modes in a multichannel, microfluidic droplet-based sample chopper employing phase-locked detection

机译:基于锁相检测的多通道,基于微流体液滴的样品斩波器中分析模式的改进

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In this work, we expand upon our recently developed droplet-based sample chopping concepts by introducing a multiplexed fluidic micro-chopper device (μChopper). Six aqueous input channels were integrated with a single oil input, and each of these seven channels was controlled by a pneumatic valve for automated sampling through software control. This improved design, while maintaining high precision in valve-based droplet generation at bandwidths of 0.03 to 0.05 Hz, enabled a variety of analytical modes to be employed on-chip compared to previous devices limited to sample/reference alternations. The device was analytically validated for real-time, continuous calibration with a single sample and five standards; multiplexed analysis during calibration using a mixed mode; and standard addition through spiking of six sample droplets with varying amounts of standard. Finally, the standard addition mode was applied to protein quantification in human serum samples using on-chip, homogeneous fluorescence immunoassays. Ultimately, with only ~1.2 μL of total analyzed solution volume—representing 100-fold and 75-fold reductions in reagent and serum volumes, respectively—we were able to generate full, six-point standard addition curves in only 1.5 min, and results correlated well with those from standard plate-reader equipment. This work thus exploited microfluidic valves for both their automation and droplet phase-locking capabilities, resulting in a micro-analytical tool capable of complex analytical interrogation modes on sub-microliter sample volumes while also leveraging drastic noise rejection via lock-in detection. The multichannel μChopper device should prove particularly useful in analyzing precious biological samples or for dynamic analyses at small volume scales.
机译:在这项工作中,我们通过引入多路流体微型斩波器(μChopper)扩展了我们最近开发的基于液滴的样本斩波概念。六个水输入通道与一个油输入通道集成在一起,这七个通道中的每个通道均由气动阀控制,可通过软件控制自动采样。这种改进的设计在以0.03至0.05 Hz的带宽保持基于阀的微滴生成的高精度的同时,与以前仅限于样品/参比交替的设备相比,能够在芯片上采用多种分析模式。该设备已经过分析验证,可以使用一个样品和五个标准液进行实时,连续校准。使用混合模式在校准过程中进行多重分析;通过添加六种不同标准液的样品液滴来添加标准液。最后,使用芯片上的均相荧光免疫测定法将标准添加模式应用于人血清样品中的蛋白质定量。最终,只有约1.2μL的总分析溶液体积(分别代表试剂和血清体积减少100倍和75倍),我们能够在1.5分钟内生成完整的六点标准加入曲线,并得到结果与标准读板设备的相关性很好。因此,这项工作利用了微流体阀的自动化和液滴锁相功能,从而形成了一种微分析工具,能够对亚微升样品量进行复杂的分析询问模式,同时还能通过锁定检测来消除噪声。多通道μChopper设备应被证明在分析珍贵的生物样品或进行小体积动态分析时特别有用。

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