Open access · OA
via OpenAlex
Quantitative evidence for early life fitness defects from 32 longevity-associated alleles in yeast
Joe R. Delaney, Christopher J. Murakami, Brady Olsen, Brian K. Kennedy, Matt Kaeberlein
Cell Cycle · 2011 · ▲ 50 citations
Abstract
Reduced fecundity has been associated with some alleles that enhance longevity in invertebrate and mammalian models. This observation has been suggested to support the antagonistic pleiotropy theory of aging, which predicts that alleles of some genes promoting fitness early in life have detrimental effects later in life that limit survival. In only a few cases, however, has the relative fitness of long-lived mutants been quantified through direct competition with the wild type genotype. Here we report the first comprehensive analysis of longevity/fitness trade-offs by measuring the relative fitness of 49 long-lived yeast variants in a direct competition assay with wild type cells. We find that 32 (65%) of these variants show a significant defect in fitness in this competition assay. In 26 (81%) of these cases, this reduction in fitness can be partially accounted for by reduced maximal growth rate during early life, usually resulting from a G0/G1-specific cell cycle defect. A majority of the less fit longevity-enhancing variants are associated with reduced mRNA translation. These findings are therefore consistent with the idea that enhanced longevity often comes with a fitness cost and suggest that this cost is often associated with variation in a subset of longevity factors, such as those regulating mRNA translation, growth, and reproduction.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.4161/cc.10.1.14457
- Canonical
- link ↗
- Fetched
- 2026-09-09 MST
Cite this
APA
Delaney, J.R., Murakami, C.J., Olsen, B., Kennedy, B.K., & Kaeberlein, M. (2011). Quantitative evidence for early life fitness defects from 32 longevity-associated alleles in yeast. <em>Cell Cycle</em>. https://doi.org/10.4161/cc.10.1.14457
Vancouver
Delaney JR, Murakami CJ, Olsen B, Kennedy BK, Kaeberlein M. Quantitative evidence for early life fitness defects from 32 longevity-associated alleles in yeast. Cell Cycle. 2011. doi:10.4161/cc.10.1.14457.
BibTeX
@article{joe2011Quanti,
title = {Quantitative evidence for early life fitness defects from 32 longevity-associated alleles in yeast},
author = {Joe R. Delaney and Christopher J. Murakami and Brady Olsen and Brian K. Kennedy and Matt Kaeberlein},
journal = {Cell Cycle},
year = {2011},
doi = {10.4161/cc.10.1.14457},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Oxidative Medicine and Cellular Longevity 2021
Open access · CC-BY
Ehretiquinone from Onosma bracteatum Wall Exhibits Antiaging Effect on Yeasts and Mammals through Antioxidative Stress and Autophagy Induction
Molecular Ecology 2018
Open access · OA
Early‐life telomere length predicts lifespan and lifetime reproductive success in a wild bird
Cancer Science 2019
Open access · CC-BY
Cellular senescence and senescence‐associated secretory phenotype via the cGAS‐STING signaling pathway in cancer
World Journal of Stem Cells 2016
Open access · CC-BY
Involvement of blood mononuclear cells in the infertility, age-associated diseases and cancer treatment
Cell stem cell 2023
Open access · CC-BY
Hematopoietic stem cells preferentially traffic misfolded proteins to aggresomes and depend on aggrephagy to maintain protein homeostasis
JCI insight 2025
Open access · OA