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April 19, 2026Cell Reports Medicine0 citationsOpen Access

A pig model of human radiation-induced veno-occlusive liver disease reveals ferroptosis as a therapeutic target

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ZSZhen SunXZXinjie ZhangQZQiang Zheng

Key Points

  • The research aims to understand the mechanisms of radiation-induced liver disease and identify therapeutic strategies.
  • Developed a pig model of radiation-induced liver disease resembling human pathology.
  • Administered 40 Gy irradiation to analyze effects within 4 weeks.
  • Performed single-cell atlas analyses to study cell death mechanisms.
  • Applied ferroptosis inhibitor liproxstatin-1 to assess its effects on liver damage and function.
  • Identified ferroptosis as a key driver of hepatocyte death in radiation-induced liver disease.
  • Liproxstatin-1 treatment prevented further disease progression and reversed liver damage.
  • Restored functionality and gene expression profiles related to hepatocyte metabolism following treatment.
  • Stimulated regeneration through the proliferation of hepatocytes and endothelial cells.

Abstract

Summary Radiation-induced liver disease (RILD) poses a major clinical challenge in radiotherapy, transplantation preconditioning, or radiation accidents, yet its pathogenesis is poorly understood due to limited animal models. Here, we establish a translational pig model recapitulating human RILD pathology within 4 weeks post-40 Gy irradiation, featuring veno-occlusive disease (VOD) and centrilobular necrosis. Single-cell atlas analyses identify ferroptosis as a key driver of hepatocyte death during RILD initiation. Ferroptosis inhibition with liproxstatin-1 (Lip-1) not only prevents RILD progression but also reverses histological damage and restores liver function. Mechanistically, Lip-1 treatment restores dysregulated gene expression profiles, particularly associated with hepatocyte ferroptosis, while stimulating hepatic regeneration via coordinated proliferation of hepatocytes and endothelial cells. Our findings establish ferroptosis inhibition as a therapeutic strategy for RILD, demonstrating its dual role in cytoprotection and regeneration. This large animal model provides a robust platform to optimize radiotherapy regimens, improve transplant conditioning, and develop targeted radioprotectants.

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Cite This Study

Sun et al. (2026) studied this question.

synapsesocial.com/papers/69e470e9010ef96374d8dad7https://doi.org/10.1016/j.xcrm.2026.102745
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