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Research Abstract Animal Study

Saikosaponin D inhibits bladder cancer growth and enhances the synergistic antitumor effect of gemcitabine.

Saikosaponin D inhibits bladder cancer growth and enhances the synergistic antitumor effect of gemcitabine by targeting PI3K/AKT-mediated ferroptosis.

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Abstract

OBJECTIVE: To investigate the mechanism of action of saikosaponin D (SSD) on bladder cancer (BCa) and evaluate its synergistic antitumor efficacy with the chemotherapeutic agent gemcitabine (GEM). METHODS: MTT, colony formation, Transwell, and scratch wound healing assays detected SSD's effects on the proliferation, invasion, and migration of RT112 and T24 cells. Specific inhibitors identified cell death mode. Western blotting, immunohistochemistry, and flow cytometry verified ferroptosis-related protein expression and oxidative stress. Network pharmacology predicted core pathways, validated by examining PI3K/AKT pathway activity. Animal models evaluated the synergistic effect of SSD and GEM. RESULTS: In vitro, SSD dose-dependently inhibited the BCa cells proliferation, invasion, and migration, and upregulating E-cadherin whilst downregulating N-cadherin, Vimentin, and Snail. The effects were blocked by the ferroptosis inhibitor Fer-1. Network pharmacology identified the PI3K/AKT pathway as a core target. Moreover, SSD regulated the GPX4/SLC7A11/ACSL4, suppressed PI3K/AKT phosphorylation, and triggered lipid peroxidation and reactive oxygen species accumulation, partially reversed by a PI3K-specific phosphopeptide agonist. In vivo, SSD inhibited tumor growth, and its combination with GEM showed superior efficacy. The combination therapy most effectively downregulated SLC7A11, GPX4, Vimentin, N-cadherin and Snail, while upregulating the ACSL4 and E-cadherin. CONCLUSION: SSD inhibits the malignant phenotype of BCa by targeting PI3K/AKT to trigger ferroptosis. Its synergistic effect with GEM from the dual mechanisms of ferroptosis sensitization and epithelial-mesenchymal transition inhibition, providing an innovative combination strategy based on natural product active ingredients to overcome bladder cancer chemoresistance.

Affiliation

Hai Huang

External References

PubMed ID:
41935433

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