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Optimization of CRISPR/Cas9 Technology to Knock Out Genes of Interest in Aneuploid Cell Lines

机译:CRISPR / CAS9技术的优化敲出一种感兴趣的动育细胞系

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Most commonly used cell lines are readily susceptible to genome editing and present a good object for cell models to establish disease-causing genes and find ways to cure diseases. However, karyotype and phenotype heterogeneity between individual cells in such cultures as well as multiplicity of target alleles make generation of desired cell lines by single-cell cloning (used for diploid cells) inapplicable. We designed and tested a simple approach for targeted genome modification of single cells in sizable cell populations, containing multiple karyotype and phenotype variants. To obtain the cell lines with suppressed expression of target proteins, we applied an original multiround genome modification protocol, monitoring protein expression level and impairment of target and off-target (undesired) DNA cleavage sites. We found that repeated modifications increase efficacy of target DNA allele disruption and decrease expression of corresponding proteins in cell populations in vitro. However, certain off-target activity was observed as well. Unexpectedly, we did not detect the increment of de novo off-target DNA site cleavage after CRISPR/Cas9 reuse, which proves our approach is suitable for genome editing in aneuploidy cell lines. Our protocol can be used for in vitro model creation by genome editing of aneuploid cells or cells with restricted clonogenic potential. Impact Statement Cell lines represent convenient models to elucidate specific causes of multigenetic and pluricausal diseases, to test breakthrough regenerative technologies. Most commonly used cell lines surpass diploid cells in their accessibility for delivery of large DNA molecules and genome editing, but the main obstacles for obtaining cell models with knockout-targeted protein from aneuploid cells are multiple allele copies and karyotype/phenotype heterogeneity. In the study, we report an original approach to CRISPR-/Cas9-mediated genome modification of aneuploid cell cultures to create functional cell models, achieving highly efficient targeted protein knockout and avoiding "clonal effect" (for the first time to our knowledge).
机译:最常用的细胞系易于易于基因组编辑,并为细胞模型提供良好的物体,以建立疾病导致基因并找到治疗疾病的方法。然而,通过单细胞克隆(用于二倍体细胞)不适用的单细胞克隆(用于二倍体细胞),核型和类别细胞之间的核型和表型异质性以及多种靶等位基因产生所需的细胞系。我们设计并测试了一种简单的靶向基因组改性的靶向细胞群中的单细胞,含有多个核型和表型变体。为了获得具有抑制靶蛋白的表达的细胞系,我们应用了原始多阵列基因组改性方案,监测蛋白表达水平和靶和偏离目标(不需要)DNA切割位点的损伤。我们发现重复的修饰增加了体外细胞群中靶DNA等位基因破坏和降低相应蛋白质表达的疗效。但是,也观察到某些脱靶活动。出乎意料地,我们没有检测到CRISPR / CAS9重用后De Novo off-target DNA位点裂解的增量,这证明了我们的方法适用于非蜂窝细胞系中的基因组。我们的协议可用于通过基因组编辑用细胞或具有限制克隆灭绝的细胞的基因组进行体外模型。影响陈述细胞系代表了阐明多肽和Pluricausal疾病的特定原因的方便模型,以测试突破再生技术。大多数常用的细胞系在其可访问性中超越二倍体细胞以提供大型DNA分子和基因组编辑,但是从非植物细胞中获得具有敲除靶向蛋白质的细胞模型的主要障碍是多个等位基因拷贝和核型/表型异质性。在该研究中,我们报告了一种原始方法,以创造的rispr-/ cas9介导的动脉细胞培养物的基因组改性,以产生功能细胞模型,实现高效的靶向蛋白质淘汰并避免“克隆效应”(首次涉及我们的知识)。

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