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scLM:Automatic Detection of Consensus Gene Clusters Across Multiple Single-cell Datasets

摘要In gene expression profiling studies,including single-cell RNA sequencing (scRNA-seq)analyses,the identification and characterization of co-expressed genes provides critical information on cell identity and function.Gene co-expression clustering in scRNA-seq data presents certain challenges.We show that commonly used methods for single-cell data are not capable of identifying co-expressed genes accurately,and produce results that substantially limit biological expectations of co-expressed genes.Herein,we present single-cell Latent-variable Model (scLM),a gene co-clustering algorithm tailored to single-cell data that performs well at detecting gene clusters with significant biologic context.Importantly,scLM can simultaneously cluster multiple single-cell data-sets,i.e.,consensus clustering,enabling users to leverage single-cell data from multiple sources for novel comparative analysis.scLM takes raw count data as input and preserves biological variation without being influenced by batch effects from multiple datasets.Results from both simulation data and experimental data demonstrate that scLM outperforms the existing methods with considerably improved accuracy.To illustrate the biological insights of scLM,we apply it to our in-house and public experimental scRNA-seq datasets.scLM identifies novel functional gene modules and refines cell states,which facilitates mechanism discovery and understanding of complex biosystems such as cancers.A user-friendly R package with all the key features of the scLM method is available at https://github.com/QSong-github/scLM.

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作者 Qianqian Song [1] Jing Su [2] Lance D.Miller [1] Wei Zhang [1] 学术成果认领
作者单位 Center for Cancer Genomics and Precision Oncology,Wake Forest Baptist Comprehensive Cancer Center,Wake Forest Baptist Medical Center,Winston Salem,NC 27157,USA;Department of Cancer Biology,Wake Forest School of Medicine,Winston Salem,NC 27157,USA [1] Center for Cancer Genomics and Precision Oncology,Wake Forest Baptist Comprehensive Cancer Center,Wake Forest Baptist Medical Center,Winston Salem,NC 27157,USA;Department of Biostatistics,Indiana University School of Medicine,Indianapolis,IN 46202,USA [2]
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发布时间 2021-12-17(万方平台首次上网日期,不代表论文的发表时间)
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基因组蛋白质组与生物信息学报(英文版)

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