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Large-scale reconstruction of cell lineages using single-cell readout of transcriptomes and CRISPR-Cas9 barcodes by scGESTALT

机译:通过SciteAlt使用单细胞读数的单细胞读数进行大规模重建细胞谱系

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摘要

Lineage relationships among the large number of heterogeneous cell types generated during development are difficult to reconstruct in a high-throughput manner. We recently established a method, scGESTALT, that combines cumulative editing of a lineage barcode array by CRISPR-Cas9 with large-scale transcriptional profiling using droplet-based single-cell RNA sequencing (scRNA-seq). The technique generates edits in the barcode array over multiple timepoints using Cas9 and pools of single-guide RNAs (sgRNAs) introduced during early and late zebrafish embryonic development, which distinguishes it from similar Cas9 lineage-tracing methods. The recorded lineages are captured, along with thousands of cellular transcriptomes, to build lineage trees with hundreds of branches representing relationships among profiled cell types. Here, we provide details for (i) generating transgenic zebrafish; (ii) performing multi-timepoint barcode editing; (iii) building scRNA-seq libraries from brain tissue; and (iv) concurrently amplifying lineage barcodes from captured single cells. Generating transgenic lines takes 6 months, and performing barcode editing and generating single-cell libraries involve 7 d of hands-on time. scGESTALT provides a scalable platform to map lineage relationships between cell types in any system that permits genome editing during development, regeneration, or disease.
机译:在开发期间产生的大量异质细胞类型中的谱系关系难以以高吞吐量的方式重建。我们最近建立了一种方法SciteAlt,它将谱系条形码阵列的累积编辑通过CRISPR-CAS9具有使用基于液滴的单细胞RNA测序(ScRNA-SEQ)的大规模转录分析。该技术在使用CAS9和早期Zebrafish胚胎发育期间使用CAS9和单引导RNA(SGRNA)的单引导RNA(SGRNA)的池来生成条形码阵列中的编辑。记录的谱系被捕获,以及数千个细胞转录om,以构建具有数百个分支的谱系,代表分类细胞类型之间的关系。在这里,我们提供(i)产生转基因斑马鱼的细节; (ii)执行多时间点点条形码编辑; (iii)从脑组织构建SCRNA-SEQ库; (IV)从捕获的单个细胞同时扩增谱系条形码。产生转基因系需要6个月,并且进行条形码编辑并产生单细胞库涉及7天的动手时间。 Scitebalt提供了一种可扩展平台,用于在任何系统中映射细胞类型之间的谱系关系,该系统在开发,再生或疾病期间允许基因组编辑。

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