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Comprehensive Integration of Single-Cell Data.

Tim Stuart | Andrew Butler | Paul Hoffman | Christoph Hafemeister | Efthymia Papalexi | William M Mauck | Yuhan Hao | Marlon Stoeckius | Peter Smibert | Rahul Satija
Cell | 2019

Single-cell transcriptomics has transformed our ability to characterize cell states, but deep biological understanding requires more than a taxonomic listing of clusters. As new methods arise to measure distinct cellular modalities, a key analytical challenge is to integrate these datasets to better understand cellular identity and function. Here, we develop a strategy to "anchor" diverse datasets together, enabling us to integrate single-cell measurements not only across scRNA-seq technologies, but also across different modalities. After demonstrating improvement over existing methods for integrating scRNA-seq data, we anchor scRNA-seq experiments with scATAC-seq to explore chromatin differences in closely related interneuron subsets and project protein expression measurements onto a bone marrow atlas to characterize lymphocyte populations. Lastly, we harmonize in situ gene expression and scRNA-seq datasets, allowing transcriptome-wide imputation of spatial gene expression patterns. Our work presents a strategy for the assembly of harmonized references and transfer of information across datasets.

Pubmed ID: 31178118

Research resources used in this publication

None found

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Antibodies used in this publication

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Associated grants

  • Agency: NICHD NIH HHS, United States
    Id: F32 HD075541
  • Agency: NIMH NIH HHS, United States
    Id: R01 MH071679
  • Agency: NICHD NIH HHS, United States
    Id: R01 HD096770
  • Agency: NHGRI NIH HHS, United States
    Id: DP2 HG009623
  • Agency: NIH HHS, United States
    Id: OT2 OD026673
  • Agency: NHGRI NIH HHS, United States
    Id: R21 HG009748

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GitHub (tool)

RRID:SCR_002630

A web-based hosting service for software development projects that use the Git revision control system offering powerful collaboration, code review, and code management. It offers both paid plans for private repositories, and free accounts for open source projects. Large or small, every repository comes with the same powerful tools. These tools are open to the community for public projects and secure for private projects. Features include: * Integrated issue tracking * Collaborative code review * Easily manage teams within organizations * Text entry with understated power * A growing list of programming languages and data formats * On the desktop and in your pocket - Android app and mobile web views let you keep track of your projects on the go.

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CRAN (tool)

RRID:SCR_003005

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Deeptools (tool)

RRID:SCR_016366

Python based tools to process, visualize and analyse high-throughput sequencing data, such as ChIP-seq, RNA-seq or MNase-seq. Implemented within Galaxy framework. Used to perform complete bioinformatic workflows ranging from quality controls and normalizations of aligned reads to integrative analyses, including clustering and visualization approaches.

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