Mocciaro Annamaria, Roth Theodore L, Bennett Hayley M, Soumillon Magali, Shah Abhik, Hiatt Joseph, Chapman Kevin, Marson Alexander, Lavieu Gregory
Berkeley Lights, Inc, 5858 Horton Street #320, Emeryville, CA, 94608, USA.
UCSF Department of Microbiology and Immunology, University of California, San Francisco, CA, 94143, USA.
Commun Biol. 2018 May 3;1:41. doi: 10.1038/s42003-018-0034-6. eCollection 2018.
Despite improvements in the CRISPR molecular toolbox, identifying and purifying properly edited clones remains slow, laborious, and low-yield. Here, we establish a method to enable clonal isolation, selection, and expansion of properly edited cells, using OptoElectroPositioning technology for single-cell manipulation on a nanofluidic device. Briefly, after electroporation of primary T cells with -targeting Cas9 ribonucleoproteins, single T cells are isolated on a chip and expanded into colonies. Phenotypic consequences of editing are rapidly assessed on-chip with cell-surface staining for CXCR4. Furthermore, individual colonies are identified based on their specific genotype. Each colony is split and sequentially exported for on-target sequencing and further off-chip clonal expansion of the validated clones. Using this method, single-clone editing efficiencies, including the rate of mono- and bi-allelic indels or precise nucleotide replacements, can be assessed within 10 days from Cas9 ribonucleoprotein introduction in cells.
尽管CRISPR分子工具盒有所改进,但识别和纯化编辑正确的克隆仍然缓慢、费力且产量低。在此,我们建立了一种方法,利用光电极定位技术在纳米流体装置上对单细胞进行操作,从而实现对编辑正确的细胞进行克隆分离、选择和扩增。简而言之,在用靶向Cas9核糖核蛋白对原代T细胞进行电穿孔后,单个T细胞在芯片上分离并扩增成集落。通过对CXCR4进行细胞表面染色,可在芯片上快速评估编辑的表型后果。此外,根据其特定基因型识别单个集落。每个集落被分割并依次输出,用于进行靶向测序以及对经过验证的克隆进行进一步的芯片外克隆扩增。使用这种方法,从向细胞中引入Cas9核糖核蛋白开始,可在10天内评估单克隆编辑效率,包括单等位基因和双等位基因插入缺失或精确核苷酸替换的比率。