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液滴微流控技术能够在单细胞转录组分辨率下追踪目标细胞。

Droplet Microfluidics Enables Tracing of Target Cells at the Single-Cell Transcriptome Resolution.

作者信息

Liu Yang, Wang Shiyu, Lyu Menghua, Xie Run, Guo Weijin, He Ying, Shi Xuyang, Wang Yang, Qi Jingyu, Zhu Qianqian, Zhang Hui, Luo Tao, Chen Huaying, Zhu Yonggang, Dong Xuan, Li Zida, Gu Ying, Liu Longqi, Xu Xun, Liu Ya

机构信息

BGI-Shenzhen, Shenzhen 518083, China.

College of Life Sciences, University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Bioengineering (Basel). 2022 Nov 10;9(11):674. doi: 10.3390/bioengineering9110674.

Abstract

The rapid promotion of single-cell omics in various fields has begun to help solve many problems encountered in research, including precision medicine, prenatal diagnosis, and embryo development. Meanwhile, single-cell techniques are also constantly updated with increasing demand. For some specific target cells, the workflow from droplet screening to single-cell sequencing is a preferred option and should reduce the impact of operation steps, such as demulsification and cell recovery. We developed an all-in-droplet method integrating cell encapsulation, target sorting, droplet picoinjection, and single-cell transcriptome profiling on chips to achieve labor-saving monitoring of TCR-T cells. As a proof of concept, in this research, TCR-T cells were encapsulated, sorted, and performed single-cell transcriptome sequencing (scRNA-seq) by injecting reagents into droplets. It avoided the tedious operation of droplet breakage and re-encapsulation between droplet sorting and scRNA-seq. Moreover, convenient device operation will accelerate the progress of chip marketization. The strategy achieved an excellent recovery performance of single-cell transcriptome with a median gene number over 4000 and a cross-contamination rate of 8.2 ± 2%. Furthermore, this strategy allows us to develop a device with high integrability to monitor infused TCR-T cells, which will promote the development of adoptive T cell immunotherapy and their clinical application.

摘要

单细胞组学在各个领域的迅速推广已开始有助于解决研究中遇到的许多问题,包括精准医学、产前诊断和胚胎发育。与此同时,随着需求的增加,单细胞技术也在不断更新。对于一些特定的靶细胞,从液滴筛选到单细胞测序的工作流程是一个首选方案,并且应减少诸如破乳和细胞回收等操作步骤的影响。我们开发了一种集成细胞封装、靶分选、液滴微量注射和芯片上单细胞转录组分析的全液滴方法,以实现对TCR-T细胞的省力监测。作为概念验证,在本研究中,通过将试剂注入液滴对TCR-T细胞进行封装、分选并进行单细胞转录组测序(scRNA-seq)。它避免了在液滴分选和scRNA-seq之间进行液滴破碎和重新封装的繁琐操作。此外,便捷的设备操作将加速芯片市场化进程。该策略实现了单细胞转录组的优异回收性能,中位数基因数超过4000,交叉污染率为8.2±2%。此外,该策略使我们能够开发一种具有高集成性的设备来监测注入的TCR-T细胞,这将促进过继性T细胞免疫疗法的发展及其临床应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aaff/9687293/3306aa2025f0/bioengineering-09-00674-g001.jpg

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