Abstract

Single-cell nanopore sequencing of full-length mRNAs transforms single-cell multi-omics studies. However, challenges include high sequencing errors and dependence on short-reads and/or barcode whitelists. To address these, we develop scNanoGPS to calculate same-cell genotypes (mutations) and phenotypes (gene/isoform expressions) without short-read nor whitelist guidance. We apply scNanoGPS onto 23,587 long-read transcriptomes from 4 tumors and 2 cell-lines. Standalone, scNanoGPS deconvolutes error-prone long-reads into single-cells and single-molecules, and simultaneously accesses both phenotypes and genotypes of individual cells. Our analyses reveal that tumor and stroma/immune cells express distinct combination of isoforms (DCIs). In a kidney tumor, we identify 924 DCI genes involved in cell-type-specific functions such as PDE10A in tumor cells and CCL3 in lymphocytes. Transcriptome-wide mutation analyses identify many cell-type-specific mutations including VEGFA mutations in tumor cells and HLA-A mutations in immune cells, highlighting the critical roles of different mutant populations in tumors. Together, scNanoGPS facilitates applications of single-cell long-read sequencing technologies.

Download full-text PDF

Link Source
Download Source 1https://www.nature.com/articles/s41467-023-39813-7?error=cookies_not_supported&code=55747033-b748-4c12-976a-91c17093bf94Web Search
Download Source 2http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10336110PMC
Download Source 3http://dx.doi.org/10.1038/s41467-023-39813-7DOI Listing

Publication Analysis

Top Keywords

long-read sequencing
8
same-cell genotypes
8
tumor cells
8
cells
5
high throughput
4
throughput single
4
single cell
4
cell long-read
4
sequencing
4
sequencing analyses
4