Open access · CC-BY
via OpenAlex
Surviving in the cold: yeast mutants with extended hibernating lifespan are oxidant sensitive
Lucie Postma, Hans Lehrach, Markus Ralser
Aging · 2009 · ▲ 17 citations
Abstract
Metabolic activity generates oxidizing molecules throughout life, but it is still debated if the resulting damage of macromolecules is a causality, or consequence, of the aging process. This problem demands for studying growth- and longevity phenotypes separately. Here, we assayed a complete collection of haploid Saccharomyces cerevisiae knock-out strains for their capacity to endure long periods at low metabolic rates. Deletion of 93 genes, predominantly factors of primary metabolism, allowed yeast to survive for more than 58 months in the cold. The majority of these deletion strains were not resistant against oxidants or reductants, but many were hypersensitive. Hence, survival at low metabolic rates has limiting genetic components, and correlates with stress resistance inversely. Indeed, maintaining the energy consuming anti-oxidative machinery seems to be disadvantageous under coldroom conditions.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.18632/aging.100104
- Canonical
- link ↗
- Fetched
- 2026-07-15 MST
Cite this
APA
Postma, L., Lehrach, H., & Ralser, M. (2009). Surviving in the cold: yeast mutants with extended hibernating lifespan are oxidant sensitive. <em>Aging</em>. https://doi.org/10.18632/aging.100104
Vancouver
Postma L, Lehrach H, Ralser M. Surviving in the cold: yeast mutants with extended hibernating lifespan are oxidant sensitive. Aging. 2009. doi:10.18632/aging.100104.
BibTeX
@article{lucie2009Surviv,
title = {Surviving in the cold: yeast mutants with extended hibernating lifespan are oxidant sensitive},
author = {Lucie Postma and Hans Lehrach and Markus Ralser},
journal = {Aging},
year = {2009},
doi = {10.18632/aging.100104},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Aging Cell 2010
Open access · OA
Comparing the yeast retrograde response and NF‐κB stress responses: implications for aging
Aging Cell 2007
Open access · OA
Mating increases starvation resistance and decreases oxidative stress resistance in <i>Drosophila melanogaster</i> females
FEMS Yeast Research 2007
Open access · OA
Mutations in the<i>RAD27</i>and<i>SGS1</i>genes differentially affect the chronological and replicative lifespan of yeast cells growing on glucose and glycerol
PLoS Genetics 2010
Open access · CC-BY
Genome-Wide Screen in Saccharomyces cerevisiae Identifies Vacuolar Protein Sorting, Autophagy, Biosynthetic, and tRNA Methylation Genes Involved in Life Span Regulation
Cells 2022
Open access · CC-BY
Yeast Chronological Lifespan: Longevity Regulatory Genes and Mechanisms
2025
Preprint