Publication | Open Access
Single-cell mtDNA dynamics in tumors is driven by coregulation of nuclear and mitochondrial genomes
21
Citations
66
References
2024
Year
GeneticsGenomicsTumor BiologyMitochondrial BiogenesisTumor HeterogeneitySingle Cell SequencingNuclear DnaCancer ResearchTumor Mitochondrial DnaGenome InstabilityMitochondrial GenomesMitochondrial DynamicDna ReplicationSingle-cell GenomicsCell BiologyChromatinSingle-cell Mtdna DynamicsMtdna Copy NumberMitochondrial FunctionCancer GenomicsSystems BiologyMedicine
The extent of cell-to-cell variation in tumor mitochondrial DNA (mtDNA) copy number and genotype, and the phenotypic and evolutionary consequences of such variation, are poorly characterized. Here we use amplification-free single-cell whole-genome sequencing (Direct Library Prep (DLP+)) to simultaneously assay mtDNA copy number and nuclear DNA (nuDNA) in 72,275 single cells derived from immortalized cell lines, patient-derived xenografts and primary human tumors. Cells typically contained thousands of mtDNA copies, but variation in mtDNA copy number was extensive and strongly associated with cell size. Pervasive whole-genome doubling events in nuDNA associated with stoichiometrically balanced adaptations in mtDNA copy number, implying that mtDNA-to-nuDNA ratio, rather than mtDNA copy number itself, mediated downstream phenotypes. Finally, multimodal analysis of DLP+ and single-cell RNA sequencing identified both somatic loss-of-function and germline noncoding variants in mtDNA linked to heteroplasmy-dependent changes in mtDNA copy number and mitochondrial transcription, revealing phenotypic adaptations to disrupted nuclear/mitochondrial balance.
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