Open access · OA
via OpenAlex
Defining the impact of mutation accumulation on replicative lifespan in yeast using cancer-associated mutator phenotypes
Mitchell Lee, Ian T. Dowsett, Daniel Carr, Brian M. Wasko, Sarah G. Stanton, Michael Chung, Niloufar Ghodsian, Anna Bode, Michael G. Kiflezghi, Priya A. Uppal, Katherine A. Grayden, Yordanos C. Elala, Thao T. Tang, Ngoc H. B. Tran, Thu Hang Tran
Proceedings of the National Academy of Sciences · 2019 · ▲ 24 citations
Abstract
Mutations accumulate within somatic cells and have been proposed to contribute to aging. It is unclear what level of mutation burden may be required to consistently reduce cellular lifespan. Human cancers driven by a mutator phenotype represent an intriguing model to test this hypothesis, since they carry the highest mutation burdens of any human cell. However, it remains technically challenging to measure the replicative lifespan of individual mammalian cells. Here, we modeled the consequences of cancer-related mutator phenotypes on lifespan using yeast defective for mismatch repair (MMR) and/or leading strand (Polε) or lagging strand (Polδ) DNA polymerase proofreading. Only haploid mutator cells with significant lifetime mutation accumulation (MA) exhibited shorter lifespans. Diploid strains, derived by mating haploids of various genotypes, carried variable numbers of fixed mutations and a range of mutator phenotypes. Some diploid strains with fewer than two mutations per megabase displayed a 25% decrease in lifespan, suggesting that moderate numbers of random heterozygous mutations can increase mortality rate. As mutation rates and burdens climbed, lifespan steadily eroded. Strong diploid mutator phenotypes produced a form of genetic anticipation with regard to aging, where the longer a lineage persisted, the shorter lived cells became. Using MA lines, we established a relationship between mutation burden and lifespan, as well as population doubling time. Our observations define a threshold of random mutation burden that consistently decreases cellular longevity in diploid yeast cells. Many human cancers carry comparable mutation burdens, suggesting that while cancers appear immortal, individual cancer cells may suffer diminished lifespan due to accrued mutation burden.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1073/pnas.1815966116
- Canonical
- link ↗
- Fetched
- 2026-07-15 MST
Cite this
APA
Lee, M., Dowsett, I.T., Carr, D., Wasko, B.M., Stanton, S.G., Chung, M., Ghodsian, N., Bode, A., Kiflezghi, M.G., Uppal, P.A., Grayden, K.A., Elala, Y.C., Tang, T.T., Tran, N.H.B., Tran, T.H., Diep, A.B., Hope, M.J., Promislow, D., Kennedy, S.R., & Kaeberlein, M. (2019). Defining the impact of mutation accumulation on replicative lifespan in yeast using cancer-associated mutator phenotypes. <em>Proceedings of the National Academy of Sciences</em>. https://doi.org/10.1073/pnas.1815966116
Vancouver
Lee M, Dowsett IT, Carr D, Wasko BM, Stanton SG, Chung M, et al. Defining the impact of mutation accumulation on replicative lifespan in yeast using cancer-associated mutator phenotypes. Proceedings of the National Academy of Sciences. 2019. doi:10.1073/pnas.1815966116.
BibTeX
@article{mitchell2019Defini,
title = {Defining the impact of mutation accumulation on replicative lifespan in yeast using cancer-associated mutator phenotypes},
author = {Mitchell Lee and Ian T. Dowsett and Daniel Carr and Brian M. Wasko and Sarah G. Stanton and Michael Chung and Niloufar Ghodsian and Anna Bode and Michael G. Kiflezghi and Priya A. Uppal and Katherine A. Grayden and Yordanos C. Elala and Thao T. Tang and Ngoc H. B. Tran and Thu Hang Tran and Anh B. Diep and Michael J. Hope and Daniel Promislow and Scott R. Kennedy and Matt Kaeberlein and Alan J. Herr},
journal = {Proceedings of the National Academy of Sciences},
year = {2019},
doi = {10.1073/pnas.1815966116},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
DNA repair 2020
Citation only
The role of telomeres and telomerase in the senescence of postmitotic cells
BMC Genetics 2016
Open access · CC-BY
Growth conditions that increase or decrease lifespan in Saccharomyces cerevisiae lead to corresponding decreases or increases in rates of interstitial deletions and non-reciprocal translocations
Proceedings of the National Academy of Sciences 1995
Preprint · OA
A biomarker that identifies senescent human cells in culture and in aging skin in vivo.
Circulation Research 2007
Open access · OA
Vascular Cell Senescence
Journal of Clinical Investigation 2018
Open access · OA
Cellular senescence in brain aging and neurodegenerative diseases: evidence and perspectives
PLoS ONE 2014
Open access · CC-BY