Arachidonic Acid Metabolism in PMN-MDSCs Suppresses Antitumor Capacity of T cells in KRAS-Mutant Cholangiocarcinoma

  • Cancer Discov. 2026 Apr 8. doi: 10.1158/2159-8290.CD-25-1844.
Jian Lin  1 Chen Sang  2 Bin Xiang  3 Xia Shen  4 Junmei Zhao  5 Shengshi Xu  6 Jiaomeng Pan  7 Youpei Lin  8 Liangqing Dong  9 Qianqian Chu  10 Guoming Shi  11 Jian Zhou  12 Jia Fan  9 Mao Zhang  8 Qiang Gao  8
Affiliations
  • 1. Fudan University shanghai China.
  • 2. Fudan University Shanghai China.
  • 3. Peking University China.
  • 4. Shanghai Jiao Tong University China.
  • 5. Zhengzhou University China.
  • 6. Zhejiang University China.
  • 7. Zhongshan Hospital China.
  • 8. Zhongshan Hospital Shanghai China.
  • 9. Zhongshan Hospital, Fudan University Shanghai China.
  • 10. Shanghai Institute of Nutrition and Health China.
  • 11. Liver Cancer Institute, Zhongshan Hospital, Fudan University Shanghai China.
  • 12. Liver Cancer Institute shanghai China.
Abstract

Metabolic reprogramming within the tumor microenvironment impairs antitumor immunity and compromises the efficacy of immunotherapy. Through multi-omics-based metabolic subtyping in intrahepatic cholangiocarcinoma (iCCA), we identified a subgroup with the worst prognosis that demonstrates significant enrichment in both Cyclooxygenase/Arachidonic acid (COX/AA) metabolism and KRAS mutations. Mechanistically, KRAS mutation-mediated NF-κB pathway activation upregulates CXCL5 expression, thereby recruiting CXCR2+ polymorphonuclear myeloid-derived suppressor cells (PMN-MDSCs) into the tumor microenvironment. Concurrently, KRAS mutation drives prostaglandin E2 (PGE2) production in tumor cells, and PGE2 in turn enhances arachidonic acid uptake and COX-2 expression in PMN-MDSCs, establishing an amplifying loop between tumor cells and PMN-MDSCs that exacerbates PGE2 production. PGE2 accumulation potently suppresses the antitumor activity of CD8+ T cells via prostaglandin E receptor 4 (EP4). Therapeutic targeting of the COX-2-PGE2-EP4 axis, combined with anti-PD-1 immunotherapy, demonstrates profound synergistic efficacy in both KRAS-mutant murine models and patient-derived tumor fragments harboring KRAS mutations.

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