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A Programmable Nanodroplet Device with Direct Sample-to-Droplet Interface toward High-Throughput Screening

机译:一种可编程纳米电流装置,具有直接采样到液滴接口,朝向高通量筛选

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Droplet microfluidics offers a promising technology for high-throughput screening due to its potential for massive parallelization of nano- to picoliter-sized reactions. Fulfillment of this promise, however, has been impeded by ineffective "sample-to-droplet" interfaces with shortcomings ranging from significant waste of sample volume, limited scalability of the number of samples, to lengthy idle time due to sample injection and switch. In response, we have developed a programmable nanodroplet device with a "direct" sample-to-droplet interface that has low sample waste, high scalability, and minimal idle time. In our device, each sample (0.8 μL) is directly spotted onto an open-to-atmosphere device inlet. The sample-to-droplet interface of our device uses programmable microfluidic valves to regulate vacuum-assisted infusion of the sample from the open inlet into the device, as well as pressure-driven generation of nanodroplets (as small as ~5 nL) from the sample with minimal waste. Our device ensures high scalability, as series of samples are simply processed by the sample-to-droplet interface in succession. Parallelization of a pair of our sample-to-droplet interfaces and effective cleaning between successive samples help minimize idle time and cross-contamination. Finally, we have integrated nanodroplet assembly and on-chip incubation capabilities in our device and have coupled our device with an in-house laser-induced fluorescence detector to achieve in-line fluorescence detection of our nanodroplets. For demonstration, we perform a cytochrome P450-based drug screening assay in 50-nL nanodroplets - a 2000-fold reduction from 100-μL benchtop reactions - in our device and achieve excellent differentiation of no-drug controls from inhibitor controls (Z′ = 0.84).
机译:液滴微流体为高通量筛选提供了有希望的技术,因为它具有纳米至皮络菌大小反应的大规模平行化的可能性。然而,履行这一承诺是由无效的“样本到液滴”界面阻碍,具有从样本量大的缺点,样品数量的有限可扩展性,冗长的空闲时间因样品喷射和开关而导致的缺点。作为响应,我们开发了一种可编程纳米进口装置,其具有“直接”样品到液滴接口,其具有低样品废物,高可扩展性和最小空闲时间。在我们的装置中,将每个样品(0.8μl)直接被发现到露天式型装置入口上。我们的装置的样品到液滴接口使用可编程的微流体阀来调节从开口入口到装置中的样品的真空辅助输注,以及来自纳米辊(小于〜5 nL)的压力驱动的产生浪费最小的样品。我们的设备确保了高可伸缩性,因为一系列样本简单地由样品到液滴连续处理。一对样品到液滴接口的并行化有助于最小化空闲时间和交叉污染。最后,我们在我们的装置中集成了纳米电流组件和片上孵育能力,并通过内部激光诱导的荧光探测器联接了我们的装置,以实现我们纳米辊的线上荧光检测。为了证明,我们在50-Nl纳米辊中进行细胞色素P450的药物筛选测定 - 从100μl台式反应中减少2000倍 - 在我们的装置中,从抑制剂控制中实现了无药物对照的优异区分(Z'= 0.84)。

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