| Literature DB >> 30583733 |
Jinzhou Yuan1, Jenny Sheng2, Peter A Sims3,4,5.
Abstract
Optically decodable beads link the identity of a sample to a measurement through an optical barcode, enabling libraries of biomolecules to be captured on beads in solution and decoded by fluorescence. This approach has been foundational to microarray, sequencing, and flow-based expression profiling technologies. We combine microfluidics with optically decodable beads and show that phenotypic analysis of living cells can be linked to single-cell sequencing. As a proof-of-concept, we demonstrate the accuracy and scalability of our tool called Single Cell Optical Phenotyping and Expression sequencing (SCOPE-Seq) to combine live cell imaging with single-cell RNA sequencing.Entities:
Keywords: Live cell imaging; Microfluidics; Single-cell RNA-Seq
Mesh:
Year: 2018 PMID: 30583733 PMCID: PMC6305572 DOI: 10.1186/s13059-018-1607-x
Source DB: PubMed Journal: Genome Biol ISSN: 1474-7596 Impact factor: 13.583
Fig. 1a Workflow for generating the dual-barcoded beads and the associated bead-free DNA sequencing libraries. b Sequence composition of the bead-bound mRNA capture oligonucleotides and optical barcode oligonucleotides (OBOs). c A look-up table linking sequence barcodes and optical barcodes. d Workflow for SCOPE-Seq. e Workflow for linking live, single-cell imaging data with single-cell RNA-Seq profile
Fig. 2a Scatter plot of the number of uniquely aligned human and murine reads for each linked sequencing barcode colored by the relative fluorescence intensity of the human and murine labels before and b after imaging-based multiplet removal. c Principal component analysis of the 19 fluorescence imaging features for the murine cells. d Correlation between the first PC and each imaging feature. e Correlation between the second PC and each imaging feature. f Normalized enrichment scores for MSigDB gene sets enriched in genes that are correlated with the first (purple) and second (magenta) PCs