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March 21, 2026Redox Biology2 citationsOpen Access

Copper deprivation reprograms antioxidant defense to suppress ferroptosis via SLC7A11

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QXQian XueZCZiyuan ChenJYJiao Yang

Key Points

  • This research aims to uncover how copper deprivation influences cellular resistance to ferroptosis through a regulatory axis involving SLC7A11.
  • Identified the role of SLC7A11 in response to copper loss through silencing of SLC31A1 and pharmacological chelation.
  • Analyzed glutathione synthesis and antioxidant defense mechanisms in response to copper deprivation.
  • Utilized xenograft models to assess the impact of SLC31A1 depletion on ferroptosis-dependent tumor suppression.
  • Copper deprivation leads to significant upregulation of SLC7A11, enhancing cellular antioxidant defenses.
  • Increased glutathione synthesis offers protection against ferroptosis under copper-limited conditions.
  • Dietary copper restriction mitigates ferroptosis-related pancreatic injury in experimental models.

Abstract

Copper is an essential trace element that governs diverse cellular functions and influences cell fate. However, how cells adapt to copper deprivation remains poorly understood. Here, we identify a copper-ferroptosis regulatory axis mediated by the cystine transporter SLC7A11. We show that copper loss, induced either by silencing of the copper importer SLC31A1 or by pharmacological chelation, leads to a marked upregulation of SLC7A11. This adaptive response enhances glutathione synthesis, bolsters antioxidant defenses, and protects cells from ferroptosis. Mechanistically, copper deprivation activates AMPK, which stabilizes the transcription factor NRF2 to drive SLC7A11 expression. Functionally, SLC31A1 depletion diminishes ferroptosis-dependent tumor suppression in xenograft models, while dietary copper restriction alleviates ferroptosis-mediated pancreatic injury in experimental acute pancreatitis. Together, these findings reveal copper deprivation as a robust condition driving ferroptosis resistance and suggest that dietary or pharmacological copper modulation could provide new strategies to fine-tune ferroptosis in cancer and tissue injury.

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Cite This Study

Xue et al. (2026) studied this question.

synapsesocial.com/papers/69be354a6e48c4981c67379dhttps://doi.org/10.1016/j.redox.2026.104130
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