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A multi-center cross-platform single-cell RNA sequencing reference dataset

Xin Chen, Zhaowei Yang, Wanqiu Chen, Yongmei Zhao, Andrew Farmer, Bao Tran, Vyacheslav Furtak, Malcolm Moos, Wenming Xiao, Charles Wang

2021Scientific Data30 citationsDOIOpen Access PDF

Abstract

Single-cell RNA sequencing (scRNA-seq) is developing rapidly, and investigators seeking to use this technology are left with a variety of options for both experimental platform and bioinformatics methods. There is an urgent need for scRNA-seq reference datasets for benchmarking of different scRNA-seq platforms and bioinformatics methods. To be broadly applicable, these should be generated from renewable, well characterized reference samples and processed in multiple centers across different platforms. Here we present a benchmark scRNA-seq dataset that includes 20 scRNA-seq datasets acquired either as mixtures or as individual samples from two biologically distinct cell lines for which a large amount of multi-platform whole genome sequencing data are also available. These scRNA-seq datasets were generated from multiple popular platforms across four sequencing centers. We believe the datasets we describe here will provide a resource that meets this need by allowing evaluation of various bioinformatics methods for scRNA-seq analyses, including but not limited to data preprocessing, imputation, normalization, clustering, batch correction, and differential analysis.

Topics & Concepts

BenchmarkingComputer sciencePreprocessorCluster analysisNormalization (sociology)Data miningBenchmark (surveying)Computational biologyMachine learningBiologyArtificial intelligenceMarketingBusinessGeodesySociologyGeographyAnthropologySingle-cell and spatial transcriptomicsExtracellular vesicles in diseaseCancer Genomics and Diagnostics
A multi-center cross-platform single-cell RNA sequencing reference dataset | Litcius