Laboratory for MEMS Applications, IMTEK - Department of Microsystems Engineering, University of Freiburg, Freiburg, Germany.
Department of Plastic and Hand Surgery, Medical Center - University of Freiburg, Faculty of Medicine, University of Freiburg, Freiburg, Germany.
PLoS One. 2021 Mar 4;16(3):e0238330. doi: 10.1371/journal.pone.0238330. eCollection 2021.
The homogeneity of the genetically modified single-cells is a necessity for many applications such as cell line development, gene therapy, and tissue engineering and in particular for regenerative medical applications. The lack of tools to effectively isolate and characterize CRISPR/Cas9 engineered cells is considered as a significant bottleneck in these applications. Especially the incompatibility of protein detection technologies to confirm protein expression changes without a preconditional large-scale clonal expansion creates a gridlock in many applications. To ameliorate the characterization of engineered cells, we propose an improved workflow, including single-cell printing/isolation technology based on fluorescent properties with high yield, a genomic edit screen (Surveyor assay), mRNA RT-PCR assessing altered gene expression, and a versatile protein detection tool called emulsion-coupling to deliver a high-content, unified single-cell workflow. The workflow was exemplified by engineering and functionally validating RANKL knockout immortalized mesenchymal stem cells showing bone formation capacity of these cells. The resulting workflow is economical, without the requirement of large-scale clonal expansions of the cells with overall cloning efficiency above 30% of CRISPR/Cas9 edited cells. Nevertheless, as the single-cell clones are comprehensively characterized at an early, highly parallel phase of the development of cells including DNA, RNA, and protein levels, the workflow delivers a higher number of successfully edited cells for further characterization, lowering the chance of late failures in the development process.
对于许多应用,如细胞系开发、基因治疗和组织工程,特别是对于再生医学应用,具有遗传修饰的单细胞的均一性是必需的。缺乏有效分离和表征 CRISPR/Cas9 工程细胞的工具被认为是这些应用中的一个重大瓶颈。特别是蛋白质检测技术与确认蛋白表达变化的不兼容,在没有大规模预条件克隆扩展的情况下,造成了许多应用的僵局。为了改善工程细胞的表征,我们提出了一种改进的工作流程,包括基于荧光特性的高产量单细胞打印/分离技术、基因组编辑筛选(Surveyor 测定法)、mRNA RT-PCR 评估基因表达变化,以及一种通用的蛋白质检测工具称为乳液偶联,以提供高通量、统一的单细胞工作流程。该工作流程通过工程和功能验证 RANKL 敲除永生化间充质干细胞来举例说明,这些细胞具有骨形成能力。该工作流程经济实惠,无需对细胞进行大规模克隆扩展,总体克隆效率高于 30%的 CRISPR/Cas9 编辑细胞。尽管如此,由于单细胞克隆在细胞的早期、高度平行的发展阶段进行全面表征,包括 DNA、RNA 和蛋白质水平,因此该工作流程可提供更多成功编辑的细胞进行进一步表征,降低了开发过程中晚期失败的机会。