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基于图链接嵌入的多组学单细胞数据整合与调控推断。

Multi-omics single-cell data integration and regulatory inference with graph-linked embedding.

机构信息

State Key Laboratory of Protein and Plant Gene Research, School of Life Sciences, Biomedical Pioneering Innovative Center (BIOPIC) and Beijing Advanced Innovation Center for Genomics (ICG), Center for Bioinformatics (CBI), Peking University, Beijing, China.

Changping Laboratory, Beijing, China.

出版信息

Nat Biotechnol. 2022 Oct;40(10):1458-1466. doi: 10.1038/s41587-022-01284-4. Epub 2022 May 2.

Abstract

Despite the emergence of experimental methods for simultaneous measurement of multiple omics modalities in single cells, most single-cell datasets include only one modality. A major obstacle in integrating omics data from multiple modalities is that different omics layers typically have distinct feature spaces. Here, we propose a computational framework called GLUE (graph-linked unified embedding), which bridges the gap by modeling regulatory interactions across omics layers explicitly. Systematic benchmarking demonstrated that GLUE is more accurate, robust and scalable than state-of-the-art tools for heterogeneous single-cell multi-omics data. We applied GLUE to various challenging tasks, including triple-omics integration, integrative regulatory inference and multi-omics human cell atlas construction over millions of cells, where GLUE was able to correct previous annotations. GLUE features a modular design that can be flexibly extended and enhanced for new analysis tasks. The full package is available online at https://github.com/gao-lab/GLUE .

摘要

尽管出现了同时测量单细胞中多种组学模式的实验方法,但大多数单细胞数据集仅包含一种模式。整合来自多种模式的组学数据的主要障碍是不同的组学层通常具有不同的特征空间。在这里,我们提出了一种名为 GLUE(图形链接统一嵌入)的计算框架,该框架通过显式建模跨组学层的调控相互作用来弥合差距。系统基准测试表明,GLUE 比用于异构单细胞多组学数据的最先进工具更准确、更稳健和更具可扩展性。我们将 GLUE 应用于各种具有挑战性的任务,包括三omics 整合、综合调控推断以及超过百万个细胞的多组学人类细胞图谱构建,在这些任务中,GLUE 能够纠正先前的注释。GLUE 具有模块化设计,可以灵活扩展和增强,以满足新的分析任务的需求。完整的软件包可在 https://github.com/gao-lab/GLUE 上获得。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9fd6/9546775/429c5609b192/41587_2022_1284_Fig1_HTML.jpg

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