Key Laboratory of Straw Biology and Utilization, The Ministry of Education, College of Life Science, Jilin Agricultural University, Chang Chun, Ji Lin, China.
Department of Biomedical Engineering, University of California, Davis, CA, USA.
SLAS Technol. 2020 Oct;25(5):446-454. doi: 10.1177/2472630320908248. Epub 2020 May 14.
High-throughput enzyme screening for desired functionality is highly demanded. This paper utilizes a newly developed microfluidic pneumatic printing platform for high-throughput enzyme screening applications. The novel printing platform can achieve distinct features including a disposable cartridge, which avoids crosstalk; a flexible cartridge design, allowing for integration of multiple channels; and fast printing speed with submicroliter spot size. Moreover, a polydimethylsiloxane (PDMS)-based sandwich structure has been proposed and used during the printing and imaging, which can lead to better results, including reduced evaporation as well as a uniform light path during imaging. Using this microfluidic pneumatic printed PDMS sandwiched microdroplet array platform, we have demonstrated the capability of high-throughput generation of a combinatorial droplet array with concentration and volume gradients. Furthermore, the potential for enzymatic study has been validated by quantified cellulose reaction implemented with the printing platform.
高通量酶筛选对于所需的功能是非常需要的。本文利用新开发的微流控气动打印平台进行高通量酶筛选应用。新型打印平台具有独特的特点,包括一次性墨盒,避免串扰;墨盒设计灵活,允许集成多个通道;以及亚微升斑点尺寸的快速打印速度。此外,在打印和成像过程中提出并使用了基于聚二甲基硅氧烷(PDMS)的夹层结构,这可以带来更好的结果,包括减少蒸发以及成像过程中的均匀光路。使用这种微流控气动打印的 PDMS 夹层微滴阵列平台,我们展示了高通量生成具有浓度和体积梯度的组合微滴阵列的能力。此外,通过使用打印平台实施定量纤维素反应,验证了酶学研究的潜力。