Zhang Han, Guzman Adrian R, Wippold Jose A, Li Yuwen, Dai Jing, Huang Can, Han Arum
Department of Electrical and Computer Engineering, Texas A&M University, College Station, Texas 77843, USA.
Lab Chip. 2020 Nov 7;20(21):3948-3959. doi: 10.1039/d0lc00757a. Epub 2020 Sep 16.
Droplet microfluidics systems hold great promise in their ability to conduct high-throughput assays for a broad range of life science applications. Despite their promise in the field and capability to conduct complex liquid handling steps, currently, most droplet microfluidic systems used for real assays utilize only a few droplet manipulation steps connected in series, and are often not integrated together on a single chip or platform. This is due to the fact that linking multiple sequential droplet functions within a single chip to operate at high efficiency over long periods of time remains technically challenging. Considering sequential manipulation is often required to conduct high-throughput screening assays on large cellular and molecular libraries, advancements in sequential operation and integration are required to advance the field. This current limitation greatly reduces the type of assays that can be realized in a high-throughput droplet format and becomes more prevalent in large library screening applications. Here we present an integrated multi-layer droplet microfluidic platform that can handle large numbers of droplets with high efficiency and minimum error. The platform combines two-photon photolithography-fabricated curved microstructures that allow high-efficiency (99.9%) re-flow of droplets and a unique droplet cleaving that automatically synchronizes paired droplets enabling high-efficiency (99.9%) downstream merging. We demonstrate that this method is applicable to a broad range of droplet sizes, including relatively large droplet sizes (hundreds of micrometers in diameter) that are typically more difficult to manipulate with high efficiency, yet are required in many cell assay applications requiring large organisms or multiple incubation steps. The utility of this highly efficient integrated droplet microfluidic platform was demonstrated by conducting a mock antibiotic screening assay against a bacterial pathogen. The approach and system presented here provides new avenues for the realization of ultra-high-efficiency multi-step droplet microfluidic systems with minimal error.
微滴微流控系统在进行广泛的生命科学应用的高通量检测方面具有巨大潜力。尽管它们在该领域前景广阔且有能力执行复杂的液体处理步骤,但目前,大多数用于实际检测的微滴微流控系统仅串联使用少数几个微滴操作步骤,并且通常未集成在单个芯片或平台上。这是因为在单个芯片内连接多个连续的微滴功能以长时间高效运行在技术上仍然具有挑战性。考虑到对大型细胞和分子文库进行高通量筛选检测通常需要顺序操作,因此需要在顺序操作和集成方面取得进展以推动该领域发展。当前的这一限制极大地减少了可以以高通量微滴形式实现的检测类型,并且在大型文库筛选应用中变得更加普遍。在此,我们展示了一个集成的多层微滴微流控平台,该平台能够以高效率和最小误差处理大量微滴。该平台结合了通过双光子光刻制造的弯曲微结构,这些微结构允许微滴高效(99.9%)回流,以及独特的微滴切割,可自动同步配对微滴,实现高效(99.9%)的下游合并。我们证明,该方法适用于广泛的微滴尺寸,包括相对较大的微滴尺寸(直径数百微米),这些尺寸通常更难以高效操作,但在许多需要大型生物体或多个孵育步骤的细胞检测应用中是必需的。通过针对一种细菌病原体进行模拟抗生素筛选检测,证明了这种高效集成的微滴微流控平台的实用性。本文介绍的方法和系统为实现具有最小误差的超高效多步微滴微流控系统提供了新途径。