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无标记微流控方法在单细胞分析和分选方面的进展。

Developments in label-free microfluidic methods for single-cell analysis and sorting.

机构信息

UC Berkeley-UC San Francisco Graduate Program in Bioengineering, University of California, Berkeley Graduate Division, Berkeley, California.

Department of Mechanical Engineering, University of California, Berkeley, Berkeley, California.

出版信息

Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2019 Jan;11(1):e1529. doi: 10.1002/wnan.1529. Epub 2018 Apr 24.

Abstract

Advancements in microfluidic technologies have led to the development of many new tools for both the characterization and sorting of single cells without the need for exogenous labels. Label-free microfluidics reduce the preparation time, reagents needed, and cost of conventional methods based on fluorescent or magnetic labels. Furthermore, these devices enable analysis of cell properties such as mechanical phenotype and dielectric parameters that cannot be characterized with traditional labels. Some of the most promising technologies for current and future development toward label-free, single-cell analysis and sorting include electronic sensors such as Coulter counters and electrical impedance cytometry; deformation analysis using optical traps and deformation cytometry; hydrodynamic sorting such as deterministic lateral displacement, inertial focusing, and microvortex trapping; and acoustic sorting using traveling or standing surface acoustic waves. These label-free microfluidic methods have been used to screen, sort, and analyze cells for a wide range of biomedical and clinical applications, including cell cycle monitoring, rapid complete blood counts, cancer diagnosis, metastatic progression monitoring, HIV and parasite detection, circulating tumor cell isolation, and point-of-care diagnostics. Because of the versatility of label-free methods for characterization and sorting, the low-cost nature of microfluidics, and the rapid prototyping capabilities of modern microfabrication, we expect this class of technology to continue to be an area of high research interest going forward. New developments in this field will contribute to the ongoing paradigm shift in cell analysis and sorting technologies toward label-free microfluidic devices, enabling new capabilities in biomedical research tools as well as clinical diagnostics. This article is categorized under: Diagnostic Tools > Biosensing Diagnostic Tools > Diagnostic Nanodevices.

摘要

微流控技术的进步导致了许多新工具的发展,这些工具可用于对单细胞进行特征分析和分选,而无需使用外源性标记。无标记微流控技术减少了传统基于荧光或磁性标记的方法所需的准备时间、试剂和成本。此外,这些设备还能够分析细胞的特性,如机械表型和介电参数,而这些特性是传统标记无法表征的。目前和未来在无标记单细胞分析和分选方面最有前途的技术之一是电子传感器,如库尔特计数器和电阻抗细胞术;使用光阱和变形细胞术进行变形分析;基于流体动力学的分选,如确定性侧向位移、惯性聚焦和微涡旋捕获;以及使用行波或驻声波进行声分选。这些无标记微流控方法已被用于筛选、分选和分析广泛的生物医学和临床应用中的细胞,包括细胞周期监测、快速全血细胞计数、癌症诊断、转移进展监测、HIV 和寄生虫检测、循环肿瘤细胞分离和即时诊断。由于无标记方法在特征分析和分选方面的多功能性、微流控技术的低成本性质以及现代微制造的快速原型制作能力,我们预计这一类技术将继续成为一个高度研究兴趣的领域。该领域的新发展将有助于推动细胞分析和分选技术向无标记微流控设备的转变,为生物医学研究工具以及临床诊断带来新的能力。本文属于以下类别:诊断工具 > 生物传感诊断工具 > 诊断纳米器件。

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