Department of Digital Anti-Aging Health Care, Inje University.
Micro device Lab Co., Ltd.
J Vis Exp. 2022 Oct 17(188). doi: 10.3791/63300.
This article describes the fabrication and operation of microfluidic acoustophoretic chips using a microfluidic acoustophoresis technique and aptamer-modified microbeads that can be used for the fast, efficient isolation of Gram-negative bacteria from a medium. This method enhances the separation efficiency using a mix of long, square microchannels. In this system, the sample and buffer are injected into the inlet port through a flow controller. For bead centering and sample separation, AC power is applied to the piezoelectric transducer via a function generator with a power amplifier to generate acoustic radiation force in the microchannel. There is a bifurcated channel at both the inlet and outlet, enabling simultaneous separation, purification, and concentration. The device has a recovery rate of >98% and purity of 97.8% up to a 10x dose concentration. This study has demonstrated a recovery rate and purity higher than the existing methods for separating bacteria, suggesting that the device can separate bacteria efficiently.
本文描述了使用微流控声电泳技术和适配体修饰的微珠制造和操作微流控声电泳芯片,可用于从介质中快速、高效地分离革兰氏阴性菌。该方法通过混合使用长而方形的微通道来提高分离效率。在该系统中,样品和缓冲液通过流量控制器注入入口。为了使微珠中心和样品分离,通过函数发生器和功率放大器将交流电源施加到压电换能器上,以在微通道中产生声辐射力。在入口和出口处都有一个分叉通道,可实现同时分离、纯化和浓缩。该装置的回收率>98%,纯度为 97.8%,最高可达 10 倍剂量浓度。这项研究表明,该装置的回收率和纯度高于现有的细菌分离方法,表明该装置能够有效地分离细菌。