Dong Zaizai, Jiao Yanli, Xie Bingteng, Hao Yongcun, Wang Pan, Liu Yuanyuan, Shi Junfeng, Chitrakar Chandani, Black Stephen, Wang Yu-Chieh, Lee L James, Li Mo, Fan Yubo, Chang Lingqian
School of Biological Science and Medical Engineering, Beihang University, 100083 Beijing, China.
Institute of Nanotechnology for Single Cell Analysis (INSCA), Beijing Advanced Innovation Center for Biomedical Engineering, Beihang University, 100083 Beijing, China.
Microsyst Nanoeng. 2020 Feb 24;6:2. doi: 10.1038/s41378-019-0112-z. eCollection 2020.
Conventional electroporation approaches show limitations in the delivery of macromolecules in vitro and in vivo. These limitations include low efficiency, noticeable cell damage and nonuniform delivery of cells. Here, we present a simple 3D electroporation platform that enables massively parallel single-cell manipulation and the intracellular delivery of macromolecules and small molecules. A pyramid pit micropore array chip was fabricated based on a silicon wet-etching method. A controllable vacuum system was adopted to trap a single cell on each micropore. Using this chip, safe single-cell electroporation was performed at low voltage. Cargoes of various sizes ranging from oligonucleotides (molecular beacons, 22 bp) to plasmid DNA (CRISPR-Cas9 expression vectors, >9 kb) were delivered into targeted cells with a significantly higher transfection efficiency than that of multiple benchmark methods (e.g., commercial electroporation devices and Lipofectamine). The delivered dose of the chemotherapeutic drug could be controlled by adjusting the applied voltage. By using CRISPR-Cas9 transfection with this system, the gene and gene were knocked out in tumor cells, which effectively inhibited their cellular activity. Overall, this vacuum-assisted micropore array platform provides a simple, efficient, high-throughput intracellular delivery method that may facilitate on-chip cell manipulation, intracellular investigation and cancer therapy.
传统的电穿孔方法在体外和体内大分子递送方面存在局限性。这些局限性包括效率低、明显的细胞损伤以及细胞递送不均匀。在此,我们展示了一个简单的3D电穿孔平台,该平台能够实现大规模并行单细胞操作以及大分子和小分子的细胞内递送。基于硅湿法蚀刻方法制造了一种金字塔形凹坑微孔阵列芯片。采用可控真空系统将单个细胞捕获在每个微孔上。使用该芯片,在低电压下进行了安全的单细胞电穿孔。从寡核苷酸(分子信标,22bp)到质粒DNA(CRISPR-Cas9表达载体,>9kb)等各种大小的货物被递送至靶细胞,其转染效率显著高于多种基准方法(例如,商业电穿孔设备和脂质体转染试剂)。化疗药物的递送剂量可通过调节施加电压来控制。通过使用该系统进行CRISPR-Cas9转染,肿瘤细胞中的基因和基因被敲除,有效抑制了它们的细胞活性。总体而言,这种真空辅助微孔阵列平台提供了一种简单、高效、高通量的细胞内递送方法,可能有助于芯片上的细胞操作、细胞内研究和癌症治疗。