Somatic evolutionary genomics: Mutations during development cause highly variable genetic mosaicism with risk of cancer and neurodegeneration
- 26 January 2010
- journal article
- review article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 107 (suppl_1) , 1725-1730
- https://doi.org/10.1073/pnas.0909343106
Abstract
Somatic mutations must happen often during development because of the large number of cell divisions to expand from a single-cell zygote to a full organism. A mutation in development carries forward to all descendant cells, causing genetic mosaicism. Widespread genetic mosaicism may influence diseases that derive from a few genetically altered cells, such as cancer. I show how to predict the expected amount of mosaicism and the variation in mosaicism between individuals. I then calculate the predicted risk of cancer derived from developmental mutations. The calculations show that a significant fraction of cancer in later life likely arises from developmental mutations in early life. In addition, much of the variation in the risk of cancer between individuals may arise from variation in the degree of genetic mosaicism set in early life. I also suggest that certain types of neurodegeneration, such as amyotrophic lateral sclerosis (ALS), may derive from a small focus of genetically altered cells. If so, then the risk of ALS would be influenced by developmental mutations and the consequent variation in genetic mosaicism. New technologies promise the ability to measure genetic mosaicism by sampling a large number of cellular genomes within an individual. The sampling of many genomes within an individual will eventually allow one to reconstruct the cell lineage history of genetic change in a single body. Somatic evolutionary genomics will follow from this technology, providing new insight into the origin and progression of disease with increasing age.Keywords
This publication has 42 references indexed in Scilit:
- The cancer genomeNature, 2009
- Age-specific incidence of cancer: Phases, transitions, and biological implicationsProceedings of the National Academy of Sciences, 2008
- The Threat of Instability: Neurodegeneration Predicted by Protein Destabilization and Aggregation PropensityPLoS Biology, 2008
- Protein Aggregation and Protein Instability Govern Familial Amyotrophic Lateral Sclerosis Patient SurvivalPLoS Biology, 2008
- TARDBP mutations in amyotrophic lateral sclerosis with TDP-43 neuropathology: a genetic and histopathological analysisThe Lancet Neurology, 2008
- A Mitochondrial Paradigm of Metabolic and Degenerative Diseases, Aging, and Cancer: A Dawn for Evolutionary MedicineAnnual Review of Genetics, 2005
- New algorithms for Luria–Delbrück fluctuation analysisMathematical Biosciences, 2005
- Origins of chromosome translocations in childhood leukaemiaNature Reviews Cancer, 2003
- Somatic mosaicism and cancer: inference based on a conditional Luria–Delbrück distributionJournal of Theoretical Biology, 2003
- The Hallmarks of CancerCell, 2000