Literature DB >> 31176620

Geometric Sketching Compactly Summarizes the Single-Cell Transcriptomic Landscape.

Brian Hie1, Hyunghoon Cho1, Benjamin DeMeo2, Bryan Bryson3, Bonnie Berger4.   

Abstract

Large-scale single-cell RNA sequencing (scRNA-seq) studies that profile hundreds of thousands of cells are becoming increasingly common, overwhelming existing analysis pipelines. Here, we describe how to enhance and accelerate single-cell data analysis by summarizing the transcriptomic heterogeneity within a dataset using a small subset of cells, which we refer to as a geometric sketch. Our sketches provide more comprehensive visualization of transcriptional diversity, capture rare cell types with high sensitivity, and reveal biological cell types via clustering. Our sketch of umbilical cord blood cells uncovers a rare subpopulation of inflammatory macrophages, which we experimentally validated. The construction of our sketches is extremely fast, which enabled us to accelerate other crucial resource-intensive tasks, such as scRNA-seq data integration, while maintaining accuracy. We anticipate our algorithm will become an increasingly essential step when sharing and analyzing the rapidly growing volume of scRNA-seq data and help enable the democratization of single-cell omics.
Copyright © 2019 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  big data; data integration; diversity; geometric sketching; heterogeneity; rare cell-type discovery; sampling; scRNA-seq; single-cell RNA-seq; sketching

Mesh:

Year:  2019        PMID: 31176620      PMCID: PMC6597305          DOI: 10.1016/j.cels.2019.05.003

Source DB:  PubMed          Journal:  Cell Syst        ISSN: 2405-4712            Impact factor:   10.304


  35 in total

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4.  DoubletFinder: Doublet Detection in Single-Cell RNA Sequencing Data Using Artificial Nearest Neighbors.

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5.  SCnorm: robust normalization of single-cell RNA-seq data.

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  30 in total

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4.  Concordant and Heterogeneity of Single-Cell Transcriptome in Cardiac Development of Human and Mouse.

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Journal:  Cell Syst       Date:  2020-09-10       Impact factor: 10.304

6.  D-EE: Distributed software for visualizing intrinsic structure of large-scale single-cell data.

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7.  Sphetcher: Spherical Thresholding Improves Sketching of Single-Cell Transcriptomic Heterogeneity.

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8.  Bayesian information sharing enhances detection of regulatory associations in rare cell types.

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9.  Practical selection of representative sets of RNA-seq samples using a hierarchical approach.

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10.  Conventional and Computational Flow Cytometry Analyses Reveal Sustained Human Intrathymic T Cell Development From Birth Until Puberty.

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