Highly efficient cell-microbead encapsulation using dielectrophoresis-assisted dual-nanowell array

Author:

Tian Zuyuan1,Yuan Zhipeng1,Duarte Pedro A1,Shaheen Mohamed1,Wang Shaoxi2,Haddon Lacey1,Chen Jie13ORCID

Affiliation:

1. Department of Electrical and Computer Engineering, University of Alberta , 9107 116 Street NW, T6G 1H9 Edmonton, AB , Canada

2. School of Microelectronics, Northwestern Polytechnical University , 127 Youyi St West, 710129 Xi’an, Shannxi , China

3. Academy for Engineering and Technology, Fudan University , 220 Handan St, 200433 Shanghai , China

Abstract

Abstract Recent advancements in micro/nanofabrication techniques have led to the development of portable devices for high-throughput single-cell analysis through the isolation of individual target cells, which are then paired with functionalized microbeads. Compared with commercially available benchtop instruments, portable microfluidic devices can be more widely and cost-effectively adopted in single-cell transcriptome and proteome analysis. The sample utilization and cell pairing rate (∼33%) of current stochastic-based cell–bead pairing approaches are fundamentally limited by Poisson statistics. Despite versatile technologies having been proposed to reduce randomness during the cell–bead pairing process in order to statistically beat the Poisson limit, improvement of the overall pairing rate of a single cell to a single bead is typically based on increased operational complexity and extra instability. In this article, we present a dielectrophoresis (DEP)-assisted dual-nanowell array (ddNA) device, which employs an innovative microstructure design and operating process that decouples the bead- and cell-loading processes. Our ddNA design contains thousands of subnanoliter microwell pairs specifically tailored to fit both beads and cells. Interdigitated electrodes (IDEs) are placed below the microwell structure to introduce a DEP force on cells, yielding high single-cell capture and pairing rates. Experimental results with human embryonic kidney cells confirmed the suitability and reproducibility of our design. We achieved a single-bead capture rate of >97% and a cell–bead pairing rate of >75%. We anticipate that our device will enhance the application of single-cell analysis in practical clinical use and academic research.

Funder

Natural Sciences and Engineering Research Council

MITACS

China Scholarship Council

Publisher

Oxford University Press (OUP)

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. On-chip dielectrophoretic single-cell manipulation;Microsystems & Nanoengineering;2024-08-26

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