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基于空间条形码技术的数字微流控高多重免疫分析

Spatial barcoding-enabled highly multiplexed immunoassay with digital microfluidics.

作者信息

Li Huibing, Liu Xianming, Zhu Fengjiao, Ma Dachuan, Miao Chunyue, Su Haoran, Deng Jiu, Ye Haiyue, Dong Hongyu, Bai Xue, Luo Yong, Lin Bingcheng, Liu Tingjiao, Lu Yao

机构信息

Department of Biotechnology, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, No.457, Zhongshan Road, Shahekou District, Dalian, Liaoning, 116023, China; College of Stomatology, Dalian Medical University, No. 9, West Section of Lvshun South Road, Lvshunkou District, Dalian, Liaoning, 116044, China.

Department of Biotechnology, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, No.457, Zhongshan Road, Shahekou District, Dalian, Liaoning, 116023, China.

出版信息

Biosens Bioelectron. 2022 Nov 1;215:114557. doi: 10.1016/j.bios.2022.114557. Epub 2022 Jul 11.

Abstract

Digital microfluidics (DMF), facilitating independent manipulation of microliter samples, provides an ideal platform for immunoassay detection; however, suffering limited multiplexity. To address the need, herein we described a digital microfluidics (DMF) platform that realizes spatial barcoding on the Teflon-coated indium tin oxide (ITO) glass side to fulfill highly multiplexed immunoassay (10+) with low-volume samples (∼4 μL) in parallel, representing the highest multiplexing recorded to date for DMF-actuated immunoassay. Planar-based spatial immobilization of multiple capture antibodies was realized on a Teflon-coated ITO glass side, which was then used as the top plate of the DMF device. Droplets containing analytes, secondary antibodies, and fluorescent signaling reporters with low volume, which were electrically manipulated by our DMF control system, were shuttled sequentially along the working electrodes to complete the immuno-reaction. Evaluation of platform performance with recombinant proteins showed excellent sensitivity and reproducibility. To test the feasibility of our platform in analyzing multiplex biomarkers of the immune response, we used lipopolysaccharide-stimulated macrophages as a model system for protein secretion dynamics studies. As a result, temporal profiling of pro-inflammatory cytokine secretion dynamics was obtained. The spatial barcoding strategy presented here is easy-to-operate to enable a more comprehensive evaluation of protein abundance from biological samples, paving the way for new opportunities to realize multiplexity-associated applications with the DMF platform.

摘要

数字微流控(DMF)能够独立操控微升级别的样本,为免疫分析检测提供了一个理想的平台;然而,其多重分析能力有限。为满足这一需求,我们在此描述了一种数字微流控(DMF)平台,该平台在涂有特氟龙的氧化铟锡(ITO)玻璃面上实现空间条形码标记,从而能够对低体积样本(约4微升)并行进行高度多重免疫分析(10种以上),这代表了迄今为止DMF驱动免疫分析所记录的最高多重分析能力。在涂有特氟龙的ITO玻璃面上实现了多种捕获抗体的基于平面的空间固定,然后将其用作DMF装置的顶板。含有分析物、二抗和低体积荧光信号报告分子的液滴由我们的DMF控制系统进行电操控,沿着工作电极依次穿梭以完成免疫反应。用重组蛋白对平台性能进行评估,结果显示出优异的灵敏度和重现性。为测试我们的平台在分析免疫反应多重生物标志物方面的可行性,我们将脂多糖刺激的巨噬细胞用作蛋白质分泌动力学研究的模型系统。结果,获得了促炎细胞因子分泌动力学的时间图谱。这里提出的空间条形码标记策略易于操作,能够更全面地评估生物样本中的蛋白质丰度,为利用DMF平台实现多重分析相关应用创造了新机会。

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