High frequency of homoplasmic mitochondrial DNA mutations in human tumors can be explained without selection
- 1 June 2001
- journal article
- letter
- Published by Springer Nature in Nature Genetics
- Vol. 28 (2), 147-150
- https://doi.org/10.1038/88859
Abstract
Researchers in several laboratories have reported a high frequency of homoplasmic mitochondrial DNA (mtDNA) mutations in human tumors1,2,3,4,5,6. This observation has been interpreted to reflect a replicative advantage for mutated mtDNA copies1,2,6, a growth advantage for a cell containing certain mtDNA mutations1,6, and/or tumorigenic properties of mtDNA mutations2. We consider another possibility—that the observed homoplasmy arose entirely by chance in tumor progenitor cells, without any physiological advantage or tumorigenic requirement. Through extensive computer modeling, we demonstrate that there is sufficient opportunity for a tumor progenitor cell to achieve homoplasmy through unbiased mtDNA replication and sorting during cell division. To test our model in vivo, we analyzed mtDNA homoplasmy in healthy human epithelial tissues and discovered that the model correctly predicts the considerable observed frequency of homoplasmic cells. Based on the available data on mitochondrial mutant fractions and cell division kinetics, we show that the predicted frequency of homoplasmy in tumor progenitor cells in the absence of selection is similar to the reported frequency of homoplasmic mutations in tumors. Although a role for other mechanisms is not excluded, random processes are sufficient to explain the incidence of homoplasmic mtDNA mutations in human tumors.Keywords
This publication has 20 references indexed in Scilit:
- Analysis of mtDNA Copy Number and Composition of Single Mitochondrial Particles Using Flow Cytometry and PCRExperimental Cell Research, 2000
- Facile Detection of Mitochondrial DNA Mutations in Tumors and Bodily FluidsScience, 2000
- Aging-Dependent Large Accumulation of Point Mutations in the Human mtDNA Control Region for ReplicationScience, 1999
- Microsatellite instability in the mitochondrial DNA of colorectal carcinomas: Evidence for mismatch repair systems in mitochondrial genomeOncogene, 1998
- Detection of somatic mutations in the mitochondrial DNA control region of colorectal and gastric tumors by heteroduplex and single‐strand conformation analysisElectrophoresis, 1997
- Somatic microsatellite mutations as molecular tumor clocksNature Medicine, 1996
- A lifetime of retinal light exposure does not appear to increase mitochondrial mutationsGene, 1991
- INTRASPECIFIC PHYLOGEOGRAPHY: The Mitochondrial DNA Bridge Between Population Genetics and SystematicsAnnual Review of Ecology and Systematics, 1987
- A mathematical model for the age distribution of cancer in manInternational Journal of Cancer, 1969
- On the Origin of Cancer CellsScience, 1956