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通过连续微流控电穿孔芯片扩展CRISPR/Cas9基因编辑的细胞数量

Expanding the cell quantity of CRISPR/Cas9 gene editing by continuous microfluidic electroporation chip.

作者信息

Li Zixi, Su Xinyue, Lin Yihong, Zhang Yu, Zhang Anlan, Wu Xin, Jiyu Xi, Li Qin, Wei Zewen

机构信息

Department of Biomedical Engineering, School of Medical Technology, Beijing Institute of Technology, Beijing 100081, China.

Department of Biomedical Engineering, School of Medical Technology, Beijing Institute of Technology, Beijing 100081, China.

出版信息

Bioelectrochemistry. 2025 Feb;161:108840. doi: 10.1016/j.bioelechem.2024.108840. Epub 2024 Oct 28.

DOI:10.1016/j.bioelechem.2024.108840
PMID:39476641
Abstract

CRISPR/Cas9-mediated gene editing offers promising and safe therapeutic options for a wide range of diseases. The technical difficulty of efficiently acquiring large quantities of gene-edited therapeutic cells in a short time period is now preventing the widespread clinical application of CRISPR/Cas9-mediated gene editing. Herein, a Large Volume Continuous Electroporation Chip (LaViE-Chip) has been developed to address the challenge of acquiring sufficient quantities of genetically edited cells for CRISPR/Cas9 gene editing. By connecting multiple relatively narrow microfluidic channels in parallel, a satisfactory balance between cell flow volume and electric field uniformity was achieved with two simple off-chip electrodes, which also isolated harmful effects around electrodes from target cells. Meanwhile, by carefully designing the curvature of the microfluidic channel, hydrodynamic controlled rotation of target cells has been realized to improve the transfection efficiency and cell viability. With these improvements, the LaViE-Chip realized 71.06 % electrotransfection efficiency, 84.3 % cell viability, and 10 cell/min cell processing speed. Moreover, the first successful incessant CRISPR gene editing by electroporation has been demonstrated, laying the technical foundation of therapeutic CRISPR gene editing.

摘要

CRISPR/Cas9介导的基因编辑为多种疾病提供了有前景且安全的治疗选择。目前,在短时间内高效获取大量基因编辑治疗细胞的技术难题阻碍了CRISPR/Cas9介导的基因编辑在临床上的广泛应用。在此,为应对为CRISPR/Cas9基因编辑获取足够数量的基因编辑细胞这一挑战,开发了一种大容量连续电穿孔芯片(LaViE芯片)。通过并行连接多个相对较窄的微流体通道,利用两个简单的片外电极在细胞流速和电场均匀性之间实现了令人满意的平衡,这也将电极周围的有害影响与靶细胞隔离开来。同时,通过精心设计微流体通道的曲率,实现了靶细胞的流体动力学控制旋转,以提高转染效率和细胞活力。有了这些改进,LaViE芯片实现了71.06%的电转染效率、84.3%的细胞活力以及每分钟处理10个细胞的速度。此外,还展示了首次通过电穿孔成功进行的连续CRISPR基因编辑,为治疗性CRISPR基因编辑奠定了技术基础。

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