Fan Chuan, Luo Yong, Xu Tailin, Song Yongchao, Zhang Xueji
Research Center for Bioengineering and Sensing Technology, School of Chemistry and Biological Engineering, University of Science and Technology Beijing, Beijing 100083, P. R. China.
Nanoscale. 2021 Jan 21;13(2):739-745. doi: 10.1039/d0nr08011j.
The analysis and detection of ultra-trace biomarkers are often carried out in microliter droplets. Common stirring approaches have some difficulties in precise and contactless mixing and dispersion in microdroplets. In this work, an open mini-pillar-based platform that integrates with ultrasound units is developed to achieve contactless mixing and dispersion in microliter samples. On such a platform, mini-pillars can anchor microdroplets as individual microreactors, and each ultrasound unit can be remotely controlled to achieve on-demand contactless micro-stirring, which is also confirmed by mixing and dispersing of Fe3O4 nanoparticles (1 μm) in microdroplets (10 μL). Such on-demand high-throughput mixing and dispersion that integrates ultrasound mixing with microdroplet technology provides a potential robot-based platform for achieving high-throughput and ultra-trace biosensing in microliter droplets.
超痕量生物标志物的分析和检测通常在微升液滴中进行。常见的搅拌方法在微滴中进行精确且非接触式的混合和分散存在一些困难。在这项工作中,开发了一种与超声装置集成的基于微型柱的开放式平台,以实现微升样品中的非接触式混合和分散。在这样的平台上,微型柱可以将微滴固定为单个微反应器,并且每个超声装置都可以远程控制,以实现按需非接触式微搅拌,这也通过在微滴(10 μL)中混合和分散Fe3O4纳米颗粒(1 μm)得到了证实。这种将超声混合与微滴技术相结合的按需高通量混合和分散为在微升液滴中实现高通量和超痕量生物传感提供了一个潜在的基于机器人的平台。