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Dataset ID
Description
Technology
Samples
EGAD00001015260
Authors: Charlotte King1, Emilie Abbie1, Joanna C. Fowler1, Irina Abnizova1, Roshan K. Sood1, Swee Hoe Ong1, Michael W. J. Hall1,2, Faye Lynch-Williams3, Benjamin A. Hall4, Philip H. Jones1,2,5
Abstract: In cancer evolution, genome alterations often occur in a specific order, implying selection depends on the prior clonal genotype 1-3. It is unknown if similar constraints operate in normal epithelia. Here, we mapped mutations in normal mid-esophagus of aged UK subjects. Mutant NOTCH1 clones colonized most of the epithelium by age 60 and above 70 tissue was saturated with mutants under strong competitive selection. Mutant TP53 was more strongly selected in donors over 60 years of age. Samples predominantly mutant for NOTCH1 showed increased selection of NOTCH2 mutants and weaker selection of mutant TP53 compared with samples that were mostly NOTCH1 wild type. In mouse esophagus lacking Notch1 we observed strong selection of mutant Notch2 and other genes not selected in wild type esophagus. In normal ageing esophagus, the first driver mutation may change the trajectory of subsequent somatic evolution by altering mutant selection.
Illumina NovaSeq 6000
31
EGAD00001016070
Mutations accumulate in normal human cells over the course of an individual’s lifetime. Early studies have shown differences in mutation rates and mutational signatures between cell types, but the range of tissues investigated has been constrained by limitations of DNA sequencing technologies. Here, we employ genome-wide NanoSeq single molecule duplex sequencing to survey the mutation landscapes of 53 normal cell types and tissue structures purified by laser-capture microdissection and flow sorting. Single base substitution mutation rates ranged from ~3/year in spermatogonia and sperm contributing to the male germline, to ~20/year in postmitotic neurons, ~50/year in mitotically active colorectal epithelial cells, ~60/year in kidney proximal tubule cells and hepatocytes, 100s/year in ultraviolet light exposed skin epidermis and from 10-50/year across the other cell types. At least 18 single base substitution and 9 small insertion and deletion mutational signatures contribute to mutation burdens, some to all cell types, some to subsets of cell types and others to a single cell type. Known exogenous mutagen exposures and endogenous mutational processes account for some mutational signatures but the origins and mechanisms underlying many are uncertain. This comprehensive survey of mutagenesis provides a foundation for understanding somatic evolution in human cell populations in health and disease.
Illumina NovaSeq 6000
790