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Updated: Aug 14, 2025

Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
Copper-dependent autophagic degradation of GPX4 drives ferroptosis
Qian Xue1, Ding Yan1, Xi Chen1
1Affliated Cancer Hospital & Institute of Guangzhou Medical University, Guangzhou Municipal and Guangdong Provincial Key Laboratory of Protein Modification and Degradation, State Key Laboratory of Respiratory Disease, School of Basic Medical Sciences, Guangzhou Medical University, Guangzhou, China.
Abstract:
Ferroptosis is a type of iron-dependent regulated cell death characterized by unrestricted lipid peroxidation and membrane damage. Although GPX4 (glutathione peroxidase 4) plays a master role in blocking ferroptosis by eliminating phospholipid hydroperoxides, the regulation of GPX4 remains poorly understood. Here, we report an unexpected role for copper in promoting ferroptotic cell death, but not cuproptosis, by inducing macroautophagic/autophagic degradation of GPX4. Copper chelators reduce ferroptosis sensitivity but do not inhibit other types of cell death, such as apoptosis, necroptosis, and alkaliptosis. Conversely, exogenous copper increases GPX4 ubiquitination and the formation of GPX4 aggregates by directly binding to GPX4 protein cysteines C107 and C148. TAX1BP1 (Tax1 binding protein 1) then acts as an autophagic receptor for GPX4 degradation and subsequent ferroptosis in response to copper stress. Consequently, copper enhances ferroptosis-mediated tumor suppression in a mouse model of pancreatic cancer tumor, whereas copper chelators attenuate experimental acute pancreatitis associated with ferroptosis. Taken together, these findings provide new insights into the link between metal stress and autophagy-dependent cell death.Abbreviations: CALCOCO2, calcium binding and coiled-coil domain 2; GPX4, glutathione peroxidase 4; MAP1LC3A/B, microtubule associated protein 1 light chain 3 alpha/beta; MPO, myeloperoxidase; NCOA4, nuclear receptor coactivator 4; OPTN, optineurin; PDAC, pancreatic ductal adenocarcinoma; RIPK1, receptor interacting serine/threonine kinase 1; ROS, reactive oxygen species; SLC40A1, solute carrier family 40 member 1; SQSTM1, sequestosome 1; TAX1BP1, Tax1 binding protein 1; TEPA, tetraethylenepentamine; TM, tetrathiomolybdate.
Insights
Copper promotes ferroptosis, a cell death pathway, by triggering the degradation of GPX4 (glutathione peroxidase 4) via autophagy. This discovery links metal stress to ferroptosis and has implications for cancer and pancreatitis treatment.
Area of Science:
- Cell Biology
- Metal Metabolism
- Autophagy
Background:
- Ferroptosis is iron-dependent cell death driven by lipid peroxidation.
- Glutathione peroxidase 4 (GPX4) is a key inhibitor of ferroptosis.
- Mechanisms regulating GPX4 stability and ferroptosis induction are not fully understood.
Purpose of the Study:
- To investigate the role of copper in regulating ferroptosis.
- To elucidate the mechanism by which copper influences GPX4.
- To explore the therapeutic potential of targeting copper in diseases.
Main Methods:
- Cell culture models of ferroptosis.
- Copper chelation and supplementation.
- GPX4 ubiquitination and degradation assays.
- Autophagy receptor analysis.
- In vivo tumor suppression and pancreatitis models.
Main Results:
- Copper induces ferroptosis by promoting GPX4 degradation through autophagy.
- Copper directly binds GPX4 cysteines, leading to ubiquitination and aggregate formation.
- TAX1BP1 acts as an autophagic receptor for copper-induced GPX4 degradation.
- Copper enhances tumor suppression in pancreatic cancer models.
- Copper chelators attenuate ferroptosis in acute pancreatitis models.
Conclusions:
- Copper acts as a novel inducer of ferroptosis via GPX4 autophagic degradation.
- Targeting copper metabolism offers a potential therapeutic strategy for ferroptosis-related diseases.
- This study reveals a new link between metal-induced stress and regulated cell death pathways.
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