Cell-type-specific patterns and consequences of somatic mutation in development and aging brain
Kriz, A. J.; Mao, S.; Shao, D. D.; Snellings, D. A.; Andersen, R.; Dong, G.; Ma, C. C.; Cline, H. E.; Huang, A. Y.; Lee, E. A.; Walsh, C. A.
Show abstract
Elucidating the role of somatic mutations in cancer, healthy tissues, and aging depends on methods that can accurately characterize somatic mosaicism across different cell types, as well as assay their impact on cellular function. Current technologies to study cell-type-specific somatic mutations within tissues are low-throughput. We developed Duplex-Multiome, incorporating duplex consensus sequencing to accurately identify somatic single-nucleotide variants (sSNV) from the same nucleus simultaneously analyzed for single-nucleus ATAC-seq (snATAC-seq) and RNA-seq (snRNA-seq). By introducing strand-tagging into the construction of snATAC-seq libraries, duplex sequencing reduces sequencing error by >10,000-fold while eliminating artifactual mutational signatures. When applied to 98%/2% mixed cell lines, Duplex-Multiome identified sSNVs present in 2% of cells with 92% precision and accurately captured known sSNV mutational spectra, while revealing unexpected subclonal lineages. Duplex-Multiome of > 51,400 nuclei from postmortem brain tissue captured sSNV burdens and spectra across all major brain cell types and subtypes, including those difficult to assay by single-cell whole-genome sequencing (scWGS). This revealed for the first time that diverse neuronal and glial cell types show distinct rates and patterns of age-related mutation, while also directly discovering developmental cell lineage relationships. Duplex-Multiome identified clonal sSNVs occurring at increased rates in glia of certain aged brains, as well as clonal sSNVs that correlated with changes in expression of nearby genes, in both neurotypical and autism spectrum disorder (ASD) individuals, directly demonstrating that somatic mutagenesis can contribute to gene expression phenotypes. Duplex-Multiome can be easily adopted into the 10X Multiome protocol and will bridge somatic mosaicism to a wide range of phenotypic readouts across cell types and tissues.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Cellular and genetic drivers of RNA editing variation in the human brain 97%
- TAD Evolutionary and functional characterization reveals diversity in mammalian TAD boundary properties and function 97%
- Detection of isoforms and genomic alterations by high-throughput full-length single-cell RNA sequencing in ovarian cancer 97%
Similar papers in this journal
- Cell type-specific gene expression dynamics during human brain maturation 98%
- Genotyping sequence-resolved copy number variationusing pangenomes reveals paralog-specific global diversityand expression divergence of duplicated genes 97%
- Targeted profiling of human extrachromosomal DNA by CRISPR-CATCH 97%
Similar papers in this journal
- A genome-wide mutational constraint map quantified from variation in 76,156 human genomes 97%
- A human DNA methylation atlas reveals principles of cell type-specific methylation and identifies thousands of cell type-specific regulatory elements 97%
- Long-read sequencing and structural variant characterization in 1,019 samples from the 1000 Genomes Project 97%
Similar papers in this journal
Similar papers in this journal
- High-resolution spatial mapping of cell state and lineage dynamics in vivo with PEtracer 96%
- A comparative atlas of single-cell chromatin accessibility in the human brain 96%
- Integrated single cell and unsupervised spatial transcriptomic analysis defines molecular anatomy of the human dorsolateral prefrontal cortex 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.