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一种基于磁驱动的仿生装置,用于在微井中隔离生物实体。

A magnet-actuated biomimetic device for isolating biological entities in microwells.

机构信息

Department of Mechanical Engineering, Indian Institute of Technology Bombay, Powai, Mumbai, 400076, India.

Department of Biosciences and Bioengineering, Indian Institute of Technology Bombay, Powai, Mumbai, 400076, India.

出版信息

Sci Rep. 2018 Aug 24;8(1):12717. doi: 10.1038/s41598-018-31274-z.

Abstract

Microwell platforms show great promise in single-cell studies and protein measurements because of their low volume sampling, rapid analysis and high throughput screening ability. However, the existing actuation mechanisms to manipulate the target samples and fabrication procedures involved in the microwell-based microfluidic devices are complex, resource-intensive and require an external power source. In this work, we present proof of concept of a simple, power-free and low-cost closed magnet digital microfluidics device for isolating biological entities in femtoliter-sized microwells. The target biological entities were encapsulated in magnetic liquid marbles and shuttled back and forth between micropatterned top and bottom plates in the microdevice to obtain high loading efficiency and short processing time. The microdevice performance was studied through fluorescent detection of three different entities: microbeads, bovine serum albumin (BSA) and Escherichia coli, captured in the microwell array. Almost 80% of the microwells were loaded with single microbeads in five shuttling cycles, in less than a minute. Further, a low volume of BSA was compartmentalized in the microwell array over a two order range of concentration. The microdevice exhibits two unique features: lotus leaf stamps were used to fabricate micropatterns (microwells and micropillars) on top and bottom plates to impart functionality and cost-effectiveness, and the target samples were actuated by a permanent magnet to make the microdevice power-free and simple in operation. The developed biomimetic microdevice is therefore capable of capturing a multitude of biological entities in low-resource settings.

摘要

微流控芯片平台由于其低体积采样、快速分析和高通量筛选能力,在单细胞研究和蛋白质测量方面具有很大的应用潜力。然而,现有的用于操纵目标样本的致动机制和基于微井的微流控器件的制造工艺复杂、资源密集且需要外部电源。在这项工作中,我们提出了一种简单、无功耗且低成本的封闭式磁数字微流控装置的概念验证,用于在皮升级别的微井中分离生物实体。目标生物实体被封装在磁性液体大理石中,并在微器件的上下微图案化板之间来回穿梭,以获得高加载效率和短处理时间。通过荧光检测三种不同的实体:微珠、牛血清白蛋白 (BSA) 和大肠杆菌,研究了微器件的性能,这些实体被捕获在微井阵列中。在不到一分钟的时间内,在五个穿梭循环中,将近 80%的微井被单个微珠加载。此外,低体积的 BSA 在浓度两个数量级范围内被分隔在微井阵列中。该微器件具有两个独特的特点:使用荷叶印章在上下板上制造微图案(微井和微柱),赋予其功能性和成本效益,并且通过永磁体来驱动目标样本,使微器件无需外部电源且操作简单。因此,开发的仿生微器件能够在资源有限的环境中捕获多种生物实体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e4ca/6109070/3f17b3db20fd/41598_2018_31274_Fig1_HTML.jpg

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