Department of Biomedical Engineering, Johns Hopkins University, 3400 N. Charles Street, Baltimore, MD, 21218, USA.
Department of Mechanical Engineering, Johns Hopkins University, 3400 N. Charles Street, Baltimore, MD, 21218, USA.
Sci Rep. 2022 Aug 3;12(1):13340. doi: 10.1038/s41598-022-17352-3.
Droplet microfluidics has in recent years found a wide range of analytical and bioanalytical applications. In droplet microfluidics, the samples that are discretized into droplets within the devices are predominantly loaded through tubings, but such tubing-based sample loading has drawbacks such as limited scalability for processing many samples, difficulty for automation, and sample wastage. While advances in autosamplers have alleviated some of these drawbacks, sample loading that can instead obviate tubings offers a potentially promising alternative but has been underexplored. To fill the gap, we introduce herein a droplet device that features a new Tubing Eliminated Sample Loading Interface (TESLI). TESLI integrates a network of programmable pneumatic microvalves that regulate vacuum and pressure sources so that successive sub-microliter samples can be directly spotted onto the open-to-atmosphere TESLI inlet, vacuumed into the device, and pressurized into nanoliter droplets within the device with minimal wastage. The same vacuum and pressure regulation also endows TESLI with cleaning and sample switching capabilities, thus enabling scalable processing of many samples in succession. Moreover, we implement a pair of TESLIs in our device to parallelize and alternate their operation as means to minimizing idle time. For demonstration, we use our device to successively process 44 samples into droplets-a number that can further scale. Our results demonstrate the feasibility of tubing-free sample loading and a promising approach for advancing droplet microfluidics.
近年来,液滴微流控技术在分析和生物分析领域得到了广泛的应用。在液滴微流控技术中,离散到设备内液滴中的样品主要通过管道加载,但这种基于管道的样品加载存在一些缺点,例如处理大量样品的扩展性有限、自动化困难和样品浪费。尽管自动进样器的进步缓解了其中的一些缺点,但可以替代管道的样品加载方法提供了一种有潜力的替代方案,但尚未得到充分探索。为了弥补这一空白,我们在此介绍了一种具有新型无管样品加载接口(TESLI)的液滴设备。TESLI 集成了可编程气动微阀网络,可调节真空和压力源,从而可以将连续的亚微升样品直接点到开放到大气的 TESLI 入口,通过真空吸入设备,并通过压力将其压入设备内的纳升液滴中,浪费最小化。相同的真空和压力调节还赋予了 TESLI 清洗和样品切换功能,从而能够连续处理大量样品。此外,我们在设备中实现了一对 TESLI,以并行化和交替操作,从而最小化空闲时间。为了演示,我们使用我们的设备将 44 个样品连续处理成液滴-这个数字还可以进一步扩展。我们的结果证明了无管样品加载的可行性,以及推进液滴微流控技术的有前途的方法。