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Light-activated cell identification and sorting (LACIS) for selection of edited clones on a nanofluidic device

机译:光激活细胞识别和分选(LACIS),用于选择纳米流体设备上的编辑克隆

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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 CXCR4-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.
机译:尽管CRISPR分子工具箱有所改进,但鉴定和纯化正确编辑的克隆仍然缓慢,费力且产量低。在这里,我们建立了一种使用OptoElectroPositioning技术在纳米流体设备上进行单细胞操作的方法,可以克隆,选择和扩增正确编辑的细胞。简而言之,在用靶向CXCR4的Cas9核糖核蛋白对原代T细胞进行电穿孔后,将单个T细胞分离在芯片上并扩增成集落。编辑的表型后果可通过CXCR4的细胞表面染色在芯片上快速评估。此外,根据其特定基因型鉴定单个菌落。分离每个菌落,并顺序输出,用于靶标测序和验证克隆的进一步芯片外克隆扩增。使用此方法,可以在将Cas9核糖核蛋白引入细胞后的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indel的发生率或精确的核苷酸替代率。

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