Search bioRxiv⌕ Search

Biology subjects

Victoria, O. Y. Q.

Publications and source records attributed to Victoria, O. Y. Q..

2 recordsLinked to original sources

TORC1 integrates metabolic state transitions during aging

Target of rapamycin complex 1 (TORC1) coordinates nutrient availability with anabolic metabolism, yet how TORC1-linked metabolic states influence cellular aging remains unclear. Using genetic, transcriptomic, metabolomic, and pharmacological analyses in prototrophic Saccharomyces cerevisiae, we identify context-dependent metabolic state transitions that uncouple cellular proliferation from long-term survival during aging. Loss of the SEACIT complex, conserved with mammalian GATOR1, establishes a low-flux metabolic state characterized by coordinated remodeling of nitrogen, nucleotide, and central carbon metabolism during stationary phase. Pharmacological restraint of nucleotide, glycolytic, or sterol metabolism converges on similar adaptive metabolic programs, whereas perturbations that impair mitochondrial respiratory capacity destabilize these states and reduce survival. Integrative analyses in human cancer and primary cells further reveal that diverse metabolic perturbations converge on mTORC1 suppression but generate distinct mitochondrial and stress responses depending on nutrient availability. Together, these findings demonstrate that TORC1 integrates metabolic state transitions in which nutrient availability and mitochondrial function determine cellular survival during aging.

systems biology↗

Mitochondrial competence determines responses to metabolic interventions during aging

Cellular responses to metabolic interventions vary across physiological contexts, but the basis for this variability remains unclear. Here, we show that mitochondrial competence determines whether cells can engage adaptive metabolic states that support survival during aging. Using 4-methylbenzoic acid (4-MBA), identified as a lifespan-extending compound, as a perturbation probe, we find that modulation of Target of Rapamycin Complex 1 (TORC1) signaling induces a shift from anabolic growth to maintenance-associated metabolism; however, signaling output alone does not predict outcomes. Instead, survival closely correlates with mitochondrial function, with its disruption abolishing adaptive responses. Genetic and biochemical analyses define a mitochondrial regulatory circuit that constrains signaling dynamics and governs state transitions. This regulatory logic is conserved across mammalian systems and operates under oxidative stress, replicative aging, and Hutchinson-Gilford progeria syndrome (HGPS), extending to proliferative cancer cells. These findings establish mitochondrial competence as a key determinant of cellular responsiveness and provide a framework for understanding context-dependent effects of metabolic interventions during aging.

cell biology↗