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在纳流控装置上对来自活单细胞的可计数分子进行细胞因子分析。

Cytokine analysis on a countable number of molecules from living single cells on nanofluidic devices.

机构信息

Department of Bioengineering, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo, Tokyo 113-8656, Japan.

出版信息

Analyst. 2019 Dec 2;144(24):7200-7208. doi: 10.1039/c9an01702j.

Abstract

Analysis of proteins released from living single cells is strongly required in the fields of biology and medicine to elucidate the mechanism of gene expression, cell-cell communication and cytopathology. However, as living single-cell analysis involves fL sample volumes with ultra-small amounts of analyte, comprehensive integration of entire chemical processing for single cells and proteins into spaces smaller than single cells (pL) would be indispensable to prevent dispersion-associated analyte loss. In this study, we proposed and developed a living single-cell protein analysis device based on micro/nanofluidics and demonstrated analysis of cytokines released from living single B cells by enzyme-linked immunosorbent assay. Based on our integration method and technologies including top-down nanofabrication, surface modifications and pressure-driven flow control, we designed and prepared the device where pL-microfluidic- and fL-nanofluidic channels are hierarchically allocated for cellular and molecular processing, respectively, and succeeded in micro/nanofluidic control for manipulating single cells and molecules. 13-unit operations for pL-cellular processing including single-cell trapping and stimulation and fL-molecular processing including fL-volumetry, antigen-antibody reactions and detection were entirely integrated into a microchip. The results suggest analytical performances for countable interleukin (IL)-6 molecules at the limit of detection of 5.27 molecules and that stimulated single B cells secrete 3.41 IL-6 molecules per min. The device is a novel tool for single-cell targeted proteomics, and the methodology of device integration is applicable to other single-cell analyses such as single-cell shotgun proteomics. This study thus provides a general approach and technical breakthroughs that will facilitate further advances in micro/nanofluidics, single-cell life science research, and other fields.

摘要

从活的单细胞中释放的蛋白质分析在生物学和医学领域是非常需要的,以阐明基因表达、细胞-细胞通讯和细胞病理学的机制。然而,由于活单细胞分析涉及到 fL 体积的超微量分析物,因此将单细胞的整个化学处理过程和蛋白质综合集成到小于单细胞的空间(pL)中对于防止与分散相关的分析物损失是必不可少的。在本研究中,我们提出并开发了一种基于微纳流控技术的活单细胞蛋白质分析装置,并通过酶联免疫吸附测定法证明了对活单细胞 B 细胞释放的细胞因子的分析。基于我们的集成方法和技术,包括自上而下的纳米制造、表面修饰和压力驱动的流控,我们设计并制备了该装置,其中 pL-微流控和 fL-纳流控通道分别用于细胞和分子处理,成功地实现了对单细胞和分子的微纳流控操作。用于 pL-细胞处理的 13 个单元操作,包括单细胞捕获和刺激,以及用于 fL-分子处理的 fL-体积测量、抗原-抗体反应和检测,全部集成到一个微芯片中。结果表明,在检测限为 5.27 个分子的情况下,可以对可数的白细胞介素(IL)-6 分子进行分析,并且刺激的单个 B 细胞每分钟分泌 3.41 个 IL-6 分子。该装置是单细胞靶向蛋白质组学的一种新工具,该装置集成的方法适用于其他单细胞分析,如单细胞鸟枪法蛋白质组学。因此,本研究提供了一种通用的方法和技术突破,将促进微纳流控、单细胞生命科学研究和其他领域的进一步发展。

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