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Heid, J.

Publications and source records attributed to Heid, J..

2 recordsLinked to original sources

Detection of genome structural variation in normal cells and tissues by single molecule sequencing

Rare genome structural-variants (SVs) in somatic cells and tissues are difficult to measure in bulk DNA because library preparation can create chimeric junctions that mimic authentic events. Based on our previous Single-Molecule Mutation sequencing (SMM-seq) assay, we developed a new method, SMM-SV-seq, which combines a chimera-suppressing library preparation with duplex confirmation of breakpoint-supporting molecules. Using libraries from mixtures of human and Drosophila DNA, we show a remaining artifact rate of 1.52 +/- 0.53 detectable cross-species chimeras per billion bases, providing an empirical background for correcting breakpoint frequencies. In a benchmark of evaluable homozygous germline deletions in the GM24385 cell line, SMM-SV-seq achieved 81.4% precision and 85.7% recall, exceeding the precision of established short-read callers while maintaining comparable recall. The assay detected dose-associated increases in SV-breakpoint frequencies in cells treated with bleomycin, a known clastogen. Biological relevance was demonstrated by a significantly greater irradiation-associated increase in translocation-like breakpoint frequencies in the BRCA1 185delAG-heterozygous mammary epithelial clone than in its isogenic wild-type control. These results establish SMM-SV-seq as a practical assay for calibrated, duplex-confirmed detection of rare somatic SV breakpoints directly in bulk DNA from non-clonal cell populations.

genomics↗

Evidence for negative selection in human primary fibroblasts to tolerate high somatic mutation loads upon treatment with multiple low doses of N-ethyl-N-nitrosourea

Advanced sequencing has revealed that thousands of mutations accumulate with age in most human tissues. While some can clonally expand and cause disease, the maximum mutation load a cell can tolerate without functional decline is unknown. We addressed this by repeatedly treating proliferating human primary fibroblasts with a low dose of the mutagen N-ethyl-N-nitrosourea and quantifying somatic mutation burden using single-cell whole-genome sequencing. Mutation load increased linearly to [~]56,000 single-nucleotide variants per cell with only a slight reduction in growth rate. Analysis showed negative selection against potentially deleterious mutations in coding and non-coding regions, including sequences tied to pathways essential for cell growth and identity. This selective removal of harmful variants likely enables cells to maintain growth functions despite extreme mutation burden. Because most adult tissues are non-dividing and cannot benefit from negative selection based on growth, mutations that accumulate during aging may have pronounced functional consequences.

genetics↗