Targeting SPP1+ macrophages via the SPP1-CD44 axis reveals a key mechanism of immune suppression and tumor progression in ovarian cancer

  • Int Immunopharmacol. 2025 Jul 28:160:114906. doi: 10.1016/j.intimp.2025.114906.
Lisha Hou  1 Mei Jiang  1 Yue Li  1 Jin Cheng  1 Fei Liu  1 Xiaoyang Han  1 Jiahao Guo  2 Lei Feng  1 Zhefeng Li  1 Junjie Yi  1 Xiaoting Zhao  3 Yan Gao  4 Wentao Yue  5
Affiliations
  • 1. Central Laboratory, Beijing Obstetrics and Gynecology Hospital, Capital Medical University, Beijing Maternal and Child Health Care Hospital, Beijing, China.
  • 2. Centre for Molecular Medicine Norway, Faculty of Medicine, University of Oslo, Gaustadelléen 21, 0349 Oslo, Norway.
  • 3. Central Laboratory, Beijing Obstetrics and Gynecology Hospital, Capital Medical University, Beijing Maternal and Child Health Care Hospital, Beijing, China. Electronic address: [email protected].
  • 4. Central Laboratory, Beijing Obstetrics and Gynecology Hospital, Capital Medical University, Beijing Maternal and Child Health Care Hospital, Beijing, China. Electronic address: [email protected].
  • 5. Central Laboratory, Beijing Obstetrics and Gynecology Hospital, Capital Medical University, Beijing Maternal and Child Health Care Hospital, Beijing, China. Electronic address: [email protected].
Abstract

Tumor-associated macrophages (TAMs) play a pivotal role in immune suppression, tumor progression, and metastasis within the tumor microenvironment (TME) of ovarian Cancer. While TAMs are known to promote T-cell dysfunction, the precise molecular mechanisms governing this process remain poorly understood. Here, we performed an integrated analysis of six high-grade serous ovarian Cancer (HGSOC) single-cell Sequencing datasets to investigate the molecular and functional diversity of TAMs in HGSOC. We identified an SPP1+ TAM subpopulation enriched in HGSOC and strongly associated with poor prognosis. These macrophages promoted T-cell exhaustion via the SPP1-CD44 axis, which emerged as the principal mediator of immune suppression. Functional assays demonstrated that SPP1 secreted by TAMs drove T-cell exhaustion, weakening anti-tumor immunity. Blocking either SPP1 or CD44 effectively reversed T-cell exhaustion, restored CD8+ T-cell functionality, and suppressed tumor growth in vivo. Furthermore, molecular docking and dynamics simulations identified nilotinib as a potential SPP1 inhibitor, exhibiting strong binding affinity and stability. In vitro assays confirmed that nilotinib reduced PD-1 expression in Jurkat cells induced by M2-type macrophages, underscoring its therapeutic potential in reversing T-cell exhaustion in ovarian Cancer. The research demonstrates that SPP1+ TAMs drive immune suppression and T-cell exhaustion in ovarian Cancer via the SPP1-CD44 axis, highlighting this pathway as a promising therapeutic target for reprogramming the immune microenvironment and improving patient outcomes.

Keywords
CD8(+) T-cell exhaustion; Immunosuppression; Ovarian cancer; SPP1(+) TAMs; Single-cell analysis.
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