Aug 2026· Archives of Medical Science· 0 citations· 223 references
TL;DR
This review focuses on recent findings of perturbed metabolic processes in cancer that create a high iron demand and an altered lipid composition, thereby predisposing cells to ferroptosis and the therapeutic potential of pharmacological agents that can selectively trigger ferroptosis in tumor cells.
Abstract
Ferroptosis is a programmed cell death characterized by excessive, iron-dependent accumulation of membrane lipid peroxides due to insufficient glutathione-dependent antioxidant defense. It is influenced by the metabolism of amino acids, lipids, and iron, and occurs in conditions of decreased glutathione peroxidase 4 (GPX4) activity. The increased polyunsaturated fatty acid (PUFA) content in membrane phospholipids is associated with cellular hypersusceptibility to ferroptosis. In contrast, incorporation of monounsaturated fatty acids may protect cells against ferroptotic cell death. Cellular sensitivity to ferroptosis is additionally influenced by glutamine catabolism and the xc–system-mediated import of cystine, which modulate glutathione production, and by elevated iron levels, which lead to the buildup of reactive oxygen species (ROS) that attack membrane-localized PUFAs. This review focuses on recent findings of perturbed metabolic processes in cancer that create a high iron demand and an altered lipid composition, thereby predisposing cells to ferroptosis. We analyze the therapeutic potential of pharmacological agents that can selectively trigger ferroptosis in tumor cells.
Ferroptosis is an iron-dependent form of regulated cell death characterized by excessive lipid peroxidation. Emerging evidence indicates that susceptibility to ferroptosis is not governed solely by cytosolic signaling pathways, but instead results from the coordinated actions of multiple intracellular organelles, inclu...
C. Piamsiri, Judith K. Gwathmey, Lai-Hua Xie· American Journal of Physiolo...· 1 citation
Ferroptosis is an iron-catalyzed lipid peroxidation (LP)-dependent cell death that mediates the development of many diseases, including liver injury. Compelling evidence has suggested a crucial role of mitochondrial reactive oxygen species (mtROS) in the induction of ferroptosis, but the underlying mechanism remains po...
Somesh Banerjee, Jaehyun Kim, M. R. Smith et al.· American Journal of Patholog...· 0 citations
Impaired energy production is a hallmark of mitochondrial oxidative phosphorylation (OXPHOS) defects. However, secondary metabolic disturbances also represent an important trigger for pathologies originating from OXPHOS aberrations. Here we show that cells with OXPHOS deficiencies accumulate triacylglycerols enriched i...
G. Puertas-Frías, María José Saucedo-Rodríguez, Kristýna Čunátová et al.· EMBO Reports· 0 citations
Ferroptosis is an iron-dependent modality of regulated cell death precipitated by the liberated accumulation of phospholipid hydroperoxides within cellular membranes, and it is a precisely enzyme-governed metabolic system of considerable pathophysiological consequence across oncology, neurodegeneration, and inflammator...
Fatima Alrushdi· Al-imad Journal of Humanitie...· 0 citations
Ferroptosis represents an iron-dependent form of cell death driven by lipid peroxidation. Autophagy is an evolutionarily conserved lysosomal degradation pathway, and its dysregulation may trigger or facilitate cell death. Autophagy-dependent ferroptosis (ADF) denotes a specific subtype of ferroptosis executed via selec...
Xiao Cui, Xinzhu Dong, Yang Li et al.· Pharmacological Research· 0 citations
Background: Pathological activation of oxidative metabolism is a universal catalyst for liver parenchyma destruction. While physiological pools of reactive oxygen and nitrogen species (ROS/RNS) regulate hepatic regeneration and cellular respiration, decompensation of endogenous antioxidant systems induces cascading dam...
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