Open access · CC-BY
via OpenAlex
The mitochondrial ribosomal protein of the large subunit, Afo1p, determines cellular longevity through mitochondrial back-signaling via TOR1
Gino Heeren, Mark Rinnerthaler, Peter Laun, Phyllis von Seyerl, Sonja Kössler, H. Klinger, Stefanie Jarolim, Birgit Simon‐Nobbe, Matthias Hager, Christoph Schüller, Didac Carmona‐Gutiérrez, Hannelore Breitenbach‐Koller, Christoph Mück, Pidder Jansen‐Dürr, Alfredo Criollo
Aging · 2009 · ▲ 86 citations
Abstract
Yeast mother cell-specific aging constitutes a model of replicative aging as it occurs in stem cell populations of higher eukaryotes. Here, we present a new long-lived yeast deletion mutation,afo1 (for aging factor one), that confers a 60% increase in replicative lifespan. AFO1/MRPL25 codes for a protein that is contained in the large subunit of the mitochondrial ribosome. Double mutant experiments indicate that the longevity-increasing action of the afo1 mutation is independent of mitochondrial translation, yet involves the cytoplasmic Tor1p as well as the growth-controlling transcription factor Sfp1p. In their final cell cycle, the long-lived mutant cells do show the phenotypes of yeast apoptosis indicating that the longevity of the mutant is not caused by an inability to undergo programmed cell death. Furthermore, the afo1 mutation displays high resistance against oxidants. Despite the respiratory deficiency the mutant has paradoxical increase in growth rate compared to generic petite mutants. A comparison of the single and double mutant strains for afo1 and fob1 shows that the longevity phenotype of afo1 is independent of the formation of ERCs (ribosomal DNA minicircles). AFO1/MRPL25 function establishes a new connection between mitochondria, metabolism and aging.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.18632/aging.100065
- Canonical
- link ↗
- Fetched
- 2026-07-15 MST
Cite this
APA
Heeren, G., Rinnerthaler, M., Laun, P., Seyerl, P.V., Kössler, S., Klinger, H., Jarolim, S., Simon‐Nobbe, B., Hager, M., Schüller, C., Carmona‐Gutiérrez, D., Breitenbach‐Koller, H., Mück, C., Jansen‐Dürr, P., Criollo, A., Kroemer, G., Madeo, F., & Breitenbach, M. (2009). The mitochondrial ribosomal protein of the large subunit, Afo1p, determines cellular longevity through mitochondrial back-signaling via TOR1. <em>Aging</em>. https://doi.org/10.18632/aging.100065
Vancouver
Heeren G, Rinnerthaler M, Laun P, Seyerl PV, Kössler S, Klinger H, et al. The mitochondrial ribosomal protein of the large subunit, Afo1p, determines cellular longevity through mitochondrial back-signaling via TOR1. Aging. 2009. doi:10.18632/aging.100065.
BibTeX
@article{gino2009Themit,
title = {The mitochondrial ribosomal protein of the large subunit, Afo1p, determines cellular longevity through mitochondrial back-signaling via TOR1},
author = {Gino Heeren and Mark Rinnerthaler and Peter Laun and Phyllis von Seyerl and Sonja Kössler and H. Klinger and Stefanie Jarolim and Birgit Simon‐Nobbe and Matthias Hager and Christoph Schüller and Didac Carmona‐Gutiérrez and Hannelore Breitenbach‐Koller and Christoph Mück and Pidder Jansen‐Dürr and Alfredo Criollo and Guido Kroemer and Frank Madeo and Michael Breitenbach},
journal = {Aging},
year = {2009},
doi = {10.18632/aging.100065},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Cell Metabolism 2016
Open access · OA
From Ancient Pathways to Aging Cells—Connecting Metabolism and Cellular Senescence
PLoS ONE 2018
Open access · CC-BY
Mitochondrial dysfunction reduces yeast replicative lifespan by elevating RAS-dependent ROS production by the ER-localized NADPH oxidase Yno1
PLoS Genetics 2014
Open access · CC-BY
High-Resolution Profiling of Stationary-Phase Survival Reveals Yeast Longevity Factors and Their Genetic Interactions
eLife 2023
Open access · CC-BY
Uncharacterized yeast gene YBR238C, an effector of TORC1 signaling in a mitochondrial feedback loop, accelerates cellular aging via HAP4- and RMD9-dependent mechanisms
Mechanisms of Ageing and Development 2016
Open access · CC-BY
Cell-cycle involvement in autophagy and apoptosis in yeast
AGE 2016
Open access · CC-BY