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在三维磁场中以单粒子分辨率实现高通量精确粒子传输用于高灵敏度生物检测。

High-throughput precise particle transport at single-particle resolution in a three-dimensional magnetic field for highly sensitive bio-detection.

作者信息

Abedini-Nassab Roozbeh, Shourabi Reza

机构信息

Faculty of Mechanical Engineering, Tarbiat Modares University, P.O. Box: 14115-111, Tehran, Iran.

Department of Electrical Engineering, University of Neyshabur, Neyshabur, Iran.

出版信息

Sci Rep. 2022 Apr 16;12(1):6380. doi: 10.1038/s41598-022-10122-1.

Abstract

Precise manipulation of microparticles have fundamental applications in the fields of lab-on-a-chip and biomedical engineering. Here, for the first time, we propose a fully operational microfluidic chip equipped with thin magnetic films composed of straight tracks and bends which precisely transports numerous single-particles in the size range of ~ 2.8-20 µm simultaneously, to certain points, synced with the general external three-axial magnetic field. The uniqueness of this design arises from the introduced vertical bias field that provides a repulsion force between the particles and prevents unwanted particle cluster formation, which is a challenge in devices operating in two-dimensional fields. Furthermore, the chip operates as an accurate sensor and detects low levels of proteins and DNA fragments, being captured by the ligand-functionalized magnetic beads, while lowering the background noise by excluding the unwanted bead pairs seen in the previous works. The image-processing detection method in this work allows detection at the single-pair resolution, increasing the sensitivity. The proposed device offers high-throughput particle transport and ultra-sensitive bio-detection in a highly parallel manner at single-particle resolution. It can also operate as a robust single-cell analysis platform for manipulating magnetized single-cells and assembling them in large arrays, with important applications in biology.

摘要

对微粒的精确操控在芯片实验室和生物医学工程领域有着重要的应用。在此,我们首次提出了一种全功能微流控芯片,该芯片配备了由直道和弯道组成的薄磁膜,能在与外部三轴磁场同步的情况下,将大量尺寸范围约为2.8 - 20微米的单个微粒同时精确地输送到特定点。这种设计的独特之处在于引入了垂直偏置场,该场在微粒之间提供排斥力,防止不需要的微粒团簇形成,而这在二维场中运行的设备中是一个挑战。此外,该芯片可作为精确的传感器,检测被配体功能化磁珠捕获的低水平蛋白质和DNA片段,同时通过排除先前工作中出现的不需要的磁珠对来降低背景噪声。这项工作中的图像处理检测方法允许以单对分辨率进行检测,提高了灵敏度。所提出的设备以单颗粒分辨率以高度并行的方式提供高通量颗粒传输和超灵敏生物检测。它还可以作为一个强大的单细胞分析平台,用于操控磁化的单细胞并将它们组装成大阵列,在生物学中具有重要应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e22/9013386/697bb02414d2/41598_2022_10122_Fig1_HTML.jpg

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