Open access · OA
via OpenAlex
Reducing sphingolipid synthesis orchestrates global changes to extend yeast lifespan
Jun Liu, Xinhe Huang, Bradley R. Withers, Eric M. Blalock, Ke Liu, Robert C. Dickson
Aging Cell · 2013 · ▲ 75 citations
Deregulated nutrient-sensing
Altered intercellular communication
Disabled macroautophagy
Caloric restriction
Rapamycin / mTOR inhibition
Yeast
Human
Abstract
Studies of aging and longevity are revealing how diseases that shorten life can be controlled to improve the quality of life and lifespan itself. Two strategies under intense study to accomplish these goals are mTOR(definition)-inhibiting drug studied for extending healthspan and lifespan." style="text-decoration:underline dotted; text-underline-offset:2px; cursor:help;">rapamycin(definition) treatment and calorie restriction. New strategies are being discovered including one that uses low-dose myriocin treatment. Myriocin inhibits the first enzyme in sphingolipid synthesis in all eukaryotes, and we showed recently that low-dose myriocin treatment increases yeast lifespan at least in part by down-regulating the sphingolipid-controlled Pkh1/2-Sch9 (ortholog of mammalian S6 kinase) signaling pathway. Here we show that myriocin treatment induces global effects and changes expression of approximately forty percent of the yeast genome with 1252 genes up-regulated and 1497 down-regulated (P < 0.05) compared with untreated cells. These changes are due to modulation of evolutionarily conserved signaling pathways including activation of the Snf1/AMPK pathway and down-regulation of the protein kinase A (PKA) and target of rapamycin complex 1 (TORC1) pathways. Many processes that enhance lifespan are regulated by these pathways in response to myriocin treatment including respiration, carbon metabolism, stress resistance, protein synthesis, and autophagy(definition). These extensive effects of myriocin match those of rapamycin and calorie restriction. Our studies in yeast together with other studies in mammals reveal the potential of myriocin or related compounds to lower the incidence of age-related diseases in humans and improve health span.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1111/acel.12107
- Canonical
- link ↗
- Fetched
- 2026-07-06 MST
Cite this
APA
Liu, J., Huang, X., Withers, B.R., Blalock, E.M., Liu, K., & Dickson, R.C. (2013). Reducing sphingolipid synthesis orchestrates global changes to extend yeast lifespan. <em>Aging Cell</em>. https://doi.org/10.1111/acel.12107
Vancouver
Liu J, Huang X, Withers BR, Blalock EM, Liu K, Dickson RC. Reducing sphingolipid synthesis orchestrates global changes to extend yeast lifespan. Aging Cell. 2013. doi:10.1111/acel.12107.
BibTeX
@article{jun2013Reduci,
title = {Reducing sphingolipid synthesis orchestrates global changes to extend yeast lifespan},
author = {Jun Liu and Xinhe Huang and Bradley R. Withers and Eric M. Blalock and Ke Liu and Robert C. Dickson},
journal = {Aging Cell},
year = {2013},
doi = {10.1111/acel.12107},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
PLoS ONE 2015
Open access · CC-BY
Drug Synergy Drives Conserved Pathways to Increase Fission Yeast Lifespan
PLoS Genetics 2012
Open access · CC-BY
Down-Regulating Sphingolipid Synthesis Increases Yeast Lifespan
Genes 2020
Open access · CC-BY
The Target of Rapamycin Signalling Pathway in Ageing and Lifespan Regulation
Aging Cell 2013
Open access · CC-BY
<scp>TORC</scp>1 signaling inhibition by rapamycin and caffeine affect lifespan, global gene expression, and cell proliferation of fission yeast
Oncotarget 2016
Open access · CC-BY
Six plant extracts delay yeast chronological aging through different signaling pathways
American Journal Of Pathology 2008
Open access · OA