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TFPI2 in tumor metastasis: a double-edged sword with clinical implications
Zhanli Guo1, Yuanke Luo1, Jinyu Wen1
1TCM Prevention and Treatment of Metabolic and Chronic Diseases Key Laboratory of Sichuan Province, Hospital of Chengdu University of Traditional Chinese Medicine, Chengdu, China.
Cancer Biology & Therapy
|May 30, 2026
Summary
Tissue factor pathway inhibitor 2 (TFPI2) has dual roles in cancer metastasis, acting as both a suppressor and promoter. Its function depends on context, highlighting its complexity as a therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Tissue factor pathway inhibitor 2 (TFPI2) is a serine protease inhibitor with known roles in tumor metastasis.
- Traditionally considered a metastasis suppressor, TFPI2 inhibits extracellular matrix remodeling, epithelial-mesenchymal transition, and angiogenesis.
Purpose of the Study:
- To review the context-dependent functions of TFPI2 in cancer metastasis.
- To explore the regulatory mechanisms, structural duality, microenvironmental heterogeneity, and receptor differences underlying TFPI2's opposing roles.
- To evaluate TFPI2 as a potential therapeutic target.
Main Methods:
- Literature review summarizing existing research on TFPI2's role in various cancers.
- Analysis of structural and microenvironmental factors influencing TFPI2 activity.
- Evaluation of therapeutic potential based on current understanding.
Main Results:
- TFPI2 exhibits context-dependent opposing functions, acting as both a metastasis suppressor and promoter in different cancers (e.g., glioblastoma, melanoma).
- Emerging evidence shows TFPI2 can promote tumor progression by creating an immunosuppressive tumor microenvironment, pathological ECM remodeling, and enhancing angiogenesis and dissemination.
- Divergent expression patterns and context-specific functions are observed within the same metastatic cascade.
Conclusions:
- TFPI2's role in cancer metastasis is complex and highly context-dependent.
- Understanding TFPI2's structural duality and microenvironmental interactions is crucial for its therapeutic application.
- Future research focusing on spatiotemporal microenvironmental dynamics is needed for precise intervention and early screening.
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