2020 · 20 citations · 25 references
EngineeringGeneticsNovel IsoformsTranscriptomics TechnologyGenomicsHigh Throughput SequencingTranscriptional RegulationSingle Cell SequencingLow ThroughputTranscriptomicsCorneal EpitheliumOphthalmologyCorneal DystrophyTranslatomicsRna SequencingSingle-cell GenomicsOmicsSingle-cell AnalysisBioinformaticsSequencingCell BiologyFunctional GenomicsLong Smrtbell InsertOcular TissueLong-read SequencingComputational BiologySystems BiologyMedicineGenome Editing
Abstract Single-cell isoform sequencing can reveal transcriptomic dynamics in individual cells invisible to bulk- and single-cell RNA analysis based on short-read sequencing. However, current long-read single-cell sequencing technologies have been limited by low throughput and high error rate. Here we introduce HIT-scISOseq for high-throughput single-cell isoform sequencing. This method was made possible by full-length cDNA capture using biotinylated PCR primers, and by our novel library preparation procedure that combines head-to-tail concatemeric full-length cDNAs into a long SMRTbell insert for high-accuracy PacBio sequencing. HIT-scISOseq yields > 10 million high-accuracy full-length isoforms in a single PacBio Sequel II 8M SMRT Cell, providing > 8 times more data output than the standard single-cell isoform PacBio sequencing protocol. We exemplified HIT-scISOseq by first studying transcriptome profiles of 4,000 normal and 8,000 injured corneal epitheliums from cynomolgus monkeys. We constructed dynamic transcriptome landscapes of known and rare cell types, revealed novel isoforms, and identified injury-related splicing and switching events that are previously not accessible with low throughput isoform sequencing. HIT-scISOseq represents a high-throughput, cost-effective, and technically simple method to accelerate the burgeoning field of long-read single-cell transcriptomics.
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Engineering, Genetics, Multiomics +17
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