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Automated methods for cell type annotation on scRNA-seq data

机译:SCRNA-SEQ数据上的单元格类型注释自动化方法

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摘要

The advent of single-cell sequencing started a new era of transcriptomic and genomic research, advancing our knowledge of the cellular heterogeneity and dynamics. Cell type annotation is a crucial step in analyzing single-cell RNA sequencing data, yet manual annotation is time-consuming and partially subjective. As an alternative, tools have been developed for automatic cell type identification. Different strategies have emerged to ultimately associate gene expression profiles of single cells with a cell type either by using curated marker gene databases, correlating reference expression data, or transferring labels by supervised classification. In this review, we present an overview of the available tools and the underlying approaches to perform automated cell type annotations on scRNA-seq data.
机译:单细胞测序的出现开始了新的转录组和基因组研究的新时代,推动了我们对细胞异质性和动态的了解。细胞型注释是分析单细胞RNA测序数据的关键步骤,但是手动注释是耗时和部分主观的。作为替代方案,已经开发了用于自动细胞类型识别的工具。通过使用愈合的标记基因数据库,通过监督分类,通过使用愈合的标记基因数据库,通过监督分类来最终出现了不同的策略最终将单细胞的基因表达谱与细胞类型相关联。在此述评中,我们概述了可用工具和底层方法,以在SCRNA-SEQ数据上执行自动单元格类型注释。

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