Skip to content
Open access · CC-BY via OpenAlex

Calorie Restriction-Mediated Replicative Lifespan Extension in Yeast Is Non-Cell Autonomous

Szu-Chieh Mei, Charles Brenner

PLoS Biology · 2015 · ▲ 24 citations

Abstract

In laboratory yeast strains with Sir2 and Fob1 function, wild-type NAD+ salvage is required for calorie restriction (CR) to extend replicative lifespan. CR does not significantly alter steady state levels of intracellular NAD+ metabolites. However, levels of Sir2 and Pnc1, two enzymes that sequentially convert NAD+ to nicotinic acid (NA), are up-regulated during CR. To test whether factors such as NA might be exported by glucose-restricted mother cells to survive later generations, we developed a replicative longevity paradigm in which mother cells are moved after 15 generations on defined media. The experiment reveals that CR mother cells lose the longevity benefit of CR when evacuated from their local environment to fresh CR media. Addition of NA or nicotinamide riboside (NR) allows a moved mother to maintain replicative longevity despite the move. Moreover, conditioned medium from CR-treated cells transmits the longevity benefit of CR to moved mother cells. Evidence suggests the existence of a longevity factor that is dialyzable but is neither NA nor NR, and indicates that Sir2 is not required for the longevity factor to be produced or to act. Data indicate that the benefit of glucose-restriction is transmitted from cell to cell in budding yeast, suggesting that glucose restriction may benefit neighboring cells and not only an individual cell.

◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:

Read at source →

Provenance

Source
OpenAlex
DOI
10.1371/journal.pbio.1002048
Canonical
link ↗
Fetched
2026-06-15 MST

Cite this

APA
Mei, S., &amp; Brenner, C. (2015). Calorie Restriction-Mediated Replicative Lifespan Extension in Yeast Is Non-Cell Autonomous. <em>PLoS Biology</em>. https://doi.org/10.1371/journal.pbio.1002048
Vancouver
Mei S, Brenner C. Calorie Restriction-Mediated Replicative Lifespan Extension in Yeast Is Non-Cell Autonomous. PLoS Biology. 2015. doi:10.1371/journal.pbio.1002048.
BibTeX
@article{szuchieh2015Calori, title = {Calorie Restriction-Mediated Replicative Lifespan Extension in Yeast Is Non-Cell Autonomous}, author = {Szu-Chieh Mei and Charles Brenner}, journal = {PLoS Biology}, year = {2015}, doi = {10.1371/journal.pbio.1002048}, }

Research neighborhood

References, citing works, and semantically nearest findings. Click a node to open it.

Related findings