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步进注射微流控技术实现可调且无污染的注入。

Tunable and Contamination-Free Injection with Microfluidics by Stepinjection.

机构信息

State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences, Beijing 100101, China.

College of Life Sciences, University of the Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Anal Chem. 2021 Oct 5;93(39):13112-13117. doi: 10.1021/acs.analchem.1c02721. Epub 2021 Sep 21.

DOI:10.1021/acs.analchem.1c02721
PMID:34546041
Abstract

Droplet microfluidics with picoinjection provides significant advantages to multistep reactions and screenings. The T-junction design for picoinjection is convenient in adding picoliter reagents into passing droplets to initiate reactions. However, conventional picoinjectors face difficulties in eliminating cross-contamination between droplets, preventing them from widespread use in sensitive biological and molecular assays. Here, we introduce stepinjection, which uses a T-junction with a stepped channel design to elevate the diffusional buffer zone into the main channel and consequently increases the pressure difference between droplets and the inlet of the injection channel. To demonstrate the stepinjector's ability to perform contamination-sensitive enzymatic assays, we inject casein fluorescein isothiocyanate (FITC-casein) into a mixture of savinase and savinase-free (labeled with a red fluorescent dye) droplets. We observe no cross-contamination using stepinjection but find a severe cross-talk using an optimal picoinjection design. We envision that the simple, tunable, and reliable stepinjector can be easily integrated in various droplet processing devices, and facilitate various biomedical and biochemical applications including multiplex digital PCR, single-cell sequencing, and enzymatic screening.

摘要

微流控液滴技术与皮升级微量注射相结合,为多步反应和筛选提供了显著优势。皮升级微量注射的 T 型 Junction 设计便于将皮升级试剂添加到通过的液滴中以引发反应。然而,传统的皮升级注射器在消除液滴之间的交叉污染方面存在困难,这限制了它们在敏感的生物和分子分析中的广泛应用。在这里,我们引入了步进注射,它使用具有阶梯式通道设计的 T 型 Junction 将扩散缓冲区提升到主通道中,从而增加了液滴和注射通道入口之间的压力差。为了展示步进注射器在执行易受污染的酶分析方面的能力,我们将荧光素异硫氰酸酯(FITC-酪蛋白)注入 Savinase 和无 Savinase(用红色荧光染料标记)液滴的混合物中。我们观察到使用步进注射没有交叉污染,但使用最佳皮升级微量注射设计发现了严重的串扰。我们设想这种简单、可调谐且可靠的步进注射器可以很容易地集成到各种液滴处理设备中,并促进各种生物医学和生化应用,包括多重数字 PCR、单细胞测序和酶筛选。

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