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RNA-Seq Signatures Normalized by mRNA Abundance Allow Absolute Deconvolution of Human Immune Cell Types

Cell Reports · 2019 · Vol. 26(6) · pp. 1627–1640.e7
Gianni MonacoBernett LeeWeili XuSeri MustafahYou Yi HwangChristophe CarréNicolas BurdinLucian VisanMichele CeccarelliMichael PoidingerAlfred ZippeliusJoão Pedro de MagalhãesAnis Larbi

Abstract

The molecular characterization of immune subsets is important for designing effective strategies to understand and treat diseases. We characterized 29 immune cell types within the peripheral blood mononuclear cell (PBMC) fraction of healthy donors using RNA-seq (RNA sequencing) and flow cytometry. Our dataset was used, first, to identify sets of genes that are specific, are co-expressed, and have housekeeping roles across the 29 cell types. Then, we examined differences in mRNA heterogeneity and mRNA abundance revealing cell type specificity. Last, we performed absolute deconvolution on a suitable set of immune cell types using transcriptomics signatures normalized by mRNA abundance. Absolute deconvolution is ready to use for PBMC transcriptomic data using our Shiny app (https://github.com/giannimonaco/ABIS). We benchmarked different deconvolution and normalization methods and validated the resources in independent cohorts. Our work has research, clinical, and diagnostic value by making it possible to effectively associate observations in bulk transcriptomics data to specific immune subsets.

Single-cell and spatial transcriptomicsCancer-related molecular mechanisms researchImmune Cell Function and InteractionDeconvolutionTranscriptomeImmune systemBiologyPeripheral blood mononuclear cellComputational biologyMessenger RNACell typeRNACell

MeSH terms

AdultB-LymphocytesBasophilsDendritic CellsFemaleFlow CytometryHumansKiller Cells, NaturalMaleMonocytesNeutrophilsOrgan SpecificityRNA, MessengerStem CellsT-Lymphocytes

Funding

  • University of Liverpool
  • Agency for Science, Technology and Research
Citations
1,006
FWCI
37.86
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References
74
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100%
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