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Polyamines buffer labile iron to suppress ferroptosis.

Polyamines are essential and evolutionarily conserved metabolites present at millimolar concentrations in mammalian cells. Cells tightly regulate polyamine homeostasis through complex feedback mechanisms, yet the precise role necessitating this regulation remains unclear. Here, we show that polyamines contribute to endogenous buffering of redox-active iron, providing a molecular link between polyamine metabolism and ferroptosis. Using a genome-wide CRISPR screen, we identified a synthetic lethal dependency between polyamine depletion and the key ferroptosis suppressor, glutathione peroxidase 4 (GPX4). Mechanistically, we show that polyamine deficiency triggers a redistribution of cellular iron, increasing the labile iron pool and upregulating ferritin. To directly visualize this iron buffering in living cells, we developed a genetically encoded fluorescent reporter for redox-active iron. Live-cell analysis revealed a striking inverse correlation between intracellular polyamine levels and redox-active iron at single-cell resolution. These findings reposition polyamines as key regulators of iron homeostasis, with implications for ferroptosis-linked disease states and cellular redox balance.

Ferroptosis

Polyamines buffer labile iron to suppress ferroptosis.

Polyamines are essential and evolutionarily conserved metabolites present at millimolar concentrations in mammalian cells. Cells tightly regulate polyamine homeostasis through complex feedback mechanisms, yet the precise role necessitating this regulation remains unclear. Here, we show that polyamines function as endogenous buffers of redox-active iron, providing a molecular link between polyamine metabolism and ferroptosis. Using genome-wide CRISPR screens, we identified a synthetic lethal dependency between polyamine depletion and the key ferroptosis suppressor, GPX4. Mechanistically, we show that polyamine deficiency triggers a redistribution of cellular iron, increasing the labile iron pool and upregulating ferritin. To directly visualize this iron buffering in living cells, we developed a genetically encoded fluorescent reporter for redox-active iron. Live-cell analysis revealed a striking inverse correlation between intracellular polyamine levels and redox-active iron at single-cell resolution. These findings reposition polyamines as key regulators of iron homeostasis, with implications for ferroptosis-linked disease states and cellular redox balance.

Journal Article

Copper and iron engage distinct metabolic programs for cellular survival.

Copper and iron are redox-active micronutrients with tightly coupled homeostasis, yet how copper modulates iron-dependent stress responses remains unclear. Using Saccharomyces cerevisiae under nutrient-limited conditions, we uncoupled proliferative growth from long-term survival to dissect metal-dependent adaptation. Copper selectively preserved survival without affecting growth, whereas iron showed similar effects. Iron chelation impaired growth and suppressed electron transport chain gene expression; copper partially rescued these defects but required iron availability for its pro-survival activity. Despite this interdependence, copper and iron engaged distinct signaling programs. Iron-dependent survival required a Target of Rapamycin complex 1 (TORC1)-permissive state and was attenuated by rapamycin, whereas copper remained active under TORC1 inhibition. In contrast, copper promoted survival through AMP-activated protein kinase (AMPK) and antioxidant pathways, while iron exhibited context-dependent AMPK reliance. Together, these findings reveal that copper and iron support cellular survival through distinct metabolic programs and suggest that the consequences of micronutrient availability are shaped by the underlying nutrient-sensing and metabolic state of the cell. This framework provides insight into how alterations in micronutrient homeostasis and metabolic signaling may influence cellular resilience during aging.

AMPK