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Model-based understanding of single-cell CRISPR screening

机译:基于模型的单细胞CRISPR筛选理解

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The recently developed single-cell CRISPR screening techniques, independently termed Perturb-Seq, CRISP-seq, or CROP-seq, combine pooled CRISPR screening with single-cell RNA-seq to investigate functional CRISPR screening in a single-cell granularity. Here, we present MUSIC, an integrated pipeline for model-based understanding of single-cell CRISPR screening data. Comprehensive tests applied to all the publicly available data revealed that MUSIC accurately quantifies and prioritizes the individual gene perturbation effect on cell phenotypes with tolerance for the substantial noise that exists in such data analysis. MUSIC facilitates the single-cell CRISPR screening from three perspectives, i.e., prioritizing the gene perturbation effect as an overall perturbation effect, in a functional topic-specific way, and quantifying the relationships between different perturbations. In summary, MUSIC provides an effective and applicable solution to elucidate perturbation function and biologic circuits by a model-based quantitative analysis of single-cell-based CRISPR screening data.
机译:最近开发的单细胞CRISPR筛选技术(分别称为Perturb-Seq,CRISP-seq或CROP-seq)结合了CRISPR筛选与单细胞RNA-seq的结合,以单细胞粒度研究功能性CRISPR筛选。在这里,我们介绍了MUSIC,这是一个用于基于模型的单细胞CRISPR筛选数据理解的集成管道。对所有可公开获得的数据进行的综合测试表明,MUSIC可以准确量化并优先考虑单个基因对细胞表型的扰动效应,并且可以容忍此类数据分析中存在的大量噪声。 MUSIC从三个角度促进了单细胞CRISPR筛选,即以功能特定于主题的方式将基因摄动效应作为整体摄动效应优先,并量化不同摄动之间的关系。总而言之,MUSIC通过对基于单细胞的CRISPR筛选数据进行基于模型的定量分析,为阐明扰动功能和生物回路提供了有效且适用的解决方案。

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