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在数字微流控芯片上的微井阵列中对单个磁性珠进行光学操纵。

Optical Manipulation of Single Magnetic Beads in a Microwell Array on a Digital Microfluidic Chip.

机构信息

Department of Biosystems, MEBIOS-Biosensors, KU Leuven , Willem de Croylaan 42, 3001 Leuven, Belgium.

Department of Electronics and Information Systems (ELIS) and Center for Nano and Biophotonics (NB-Photonics), UGent , Sint-Pietersnieuwstraat 41, 9000 Gent, Belgium.

出版信息

Anal Chem. 2016 Sep 6;88(17):8596-603. doi: 10.1021/acs.analchem.6b01734. Epub 2016 Aug 9.

Abstract

The detection of single molecules in magnetic microbead microwell array formats revolutionized the development of digital bioassays. However, retrieval of individual magnetic beads from these arrays has not been realized until now despite having great potential for studying captured targets at the individual level. In this paper, optical tweezers were implemented on a digital microfluidic platform for accurate manipulation of single magnetic beads seeded in a microwell array. Successful optical trapping of magnetic beads was found to be dependent on Brownian motion of the beads, suggesting a 99% chance of trapping a vibrating bead. A tailor-made experimental design was used to screen the effect of bead type, ionic buffer strength, surfactant type, and concentration on the Brownian activity of beads in microwells. With the optimal conditions, the manipulation of magnetic beads was demonstrated by their trapping, retrieving, transporting, and repositioning to a desired microwell on the array. The presented platform combines the strengths of digital microfluidics, digital bioassays, and optical tweezers, resulting in a powerful dynamic microwell array system for single molecule and single cell studies.

摘要

在磁性微珠微孔阵列形式中检测单个分子,极大地推动了数字生物测定法的发展。然而,尽管从这些阵列中检索单个磁性珠具有研究捕获靶标个体水平的巨大潜力,但直到现在仍未实现。在本文中,我们在数字微流控平台上实现了光镊,用于精确操纵微孔阵列中种子的单个磁性珠。成功的光捕获实验发现,光镊对磁性珠的捕获依赖于磁性珠的布朗运动,这表明振动的磁性珠有 99%的几率被捕获。采用定制的实验设计筛选了珠类型、离子缓冲强度、表面活性剂类型和浓度对微珠在微孔中布朗运动的影响。在优化条件下,通过对磁性珠的捕获、检索、运输和重新定位到阵列上所需的微孔,证明了磁性珠的操纵。所提出的平台结合了数字微流控、数字生物测定和光镊的优势,为单个分子和单个细胞的研究提供了一个强大的动态微珠阵列系统。

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