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使用ICARUS v2.0描绘单细胞RNA测序数据中的复杂基因表达模式。

Delineation of complex gene expression patterns in single cell RNA-seq data with ICARUS v2.0.

作者信息

Jiang Andrew, You Linya, Snell Russell G, Lehnert Klaus

机构信息

Applied Translational Genetics Group, School of Biological Sciences, The University of Auckland, Auckland, New Zealand.

Department of Human Anatomy & Histoembryology, School of Basic Medical Sciences, Fudan University, Shanghai, China.

出版信息

NAR Genom Bioinform. 2023 Mar 29;5(2):lqad032. doi: 10.1093/nargab/lqad032. eCollection 2023 Jun.

Abstract

Complex biological traits and disease often involve patterns of gene expression that can be characterised and examined. Here we present ICARUS v2.0, an update to our single cell RNA-seq analysis web server with additional tools to investigate gene networks and understand core patterns of gene regulation in relation to biological traits. ICARUS v2.0 enables gene co-expression analysis with MEGENA, transcription factor regulated network identification with SCENIC, trajectory analysis with Monocle3, and characterisation of cell-cell communication with CellChat. Cell cluster gene expression profiles may be examined against Genome Wide Association Studies with MAGMA to find significant associations with GWAS traits. Additionally, differentially expressed genes may be compared against the Drug-Gene Interaction database (DGIdb 4.0) to facilitate drug discovery. ICARUS v2.0 offers a comprehensive toolbox of the latest single cell RNA-seq analysis methodologies packed into an efficient, user friendly, tutorial style web server application (accessible at https://launch.icarus-scrnaseq.cloud.edu.au/) that enables single cell RNA-seq analysis tailored to the user's dataset.

摘要

复杂的生物学性状和疾病通常涉及可被表征和研究的基因表达模式。在此,我们展示ICARUS v2.0,这是我们的单细胞RNA测序分析网络服务器的升级版,它增加了用于研究基因网络和理解与生物学性状相关的基因调控核心模式的工具。ICARUS v2.0支持使用MEGENA进行基因共表达分析、使用SCENIC识别转录因子调控网络、使用Monocle3进行轨迹分析以及使用CellChat表征细胞间通讯。细胞簇基因表达谱可通过MAGMA与全基因组关联研究进行比对,以发现与GWAS性状的显著关联。此外,差异表达基因可与药物-基因相互作用数据库(DGIdb 4.0)进行比较,以促进药物发现。ICARUS v2.0提供了一个全面的工具箱,包含最新的单细胞RNA测序分析方法,整合在一个高效、用户友好的教程式网络服务器应用程序中(可通过https://launch.icarus-scrnaseq.cloud.edu.au/访问),能够根据用户的数据集进行定制化的单细胞RNA测序分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b42/10052380/d3acaf01d99e/lqad032fig1.jpg

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