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A Unique Anti-Cancer 3-Styrylchromone Suppresses Inflammatory Response via HMGB1-RAGE Signaling
Hideaki Abe1,2, Miwa Okazawa2, Takahiro Oyama1,2
1Hinoki Shinyaku Co., Ltd., Chiyoda-ku, Tokyo 102-0084, Japan.
Abstract:
Background: High mobility group box 1 (HMGB1)-receptor for advanced glycation endo-products (RAGE) axis serves as a key player in linking inflammation and carcinogenesis. Recently, papaverine was revealed to suppress the HMGB1-RAGE inflammatory signaling pathway and cancer cell proliferation. Therefore, a dual suppressor targeting this axis is expected to become a new type of therapeutic agent to treat cancer. Methods: Papaverine 3D pharmacophore mimetic compounds were selected by the LigandScout software from our in-house, anti-cancer chemical library and assessed for their anti-inflammatory activities by a HMGB1-RAGE-mediated interleukin-6 production assay using macrophage-like RAW264.7 cells. Molecular-biological analyses, such as Western blotting, were performed to clarify the mechanism of action. Results: A unique 6-methoxy-3-hydroxy-styrylchromone was found to possess potent anti-inflammatory and anti-cancer activities via the suppression of the HMGB1-RAGE-extracellular signal-regulated kinase 1/2 signaling pathway. Furthermore, the 3D pharmacophore-activity relationship analyses revealed that the hydroxyl group at the C4' position of the benzene ring in a 3-styryl moiety was significant in its dual suppressive effects. Conclusions: These findings indicated that this compound may provide a valuable scaffold for the development of a new type of anti-cancer drug possessing anti-inflammatory activity and as a tool for understanding the link between inflammation and carcinogenesis.
Insights
A novel compound, 6-methoxy-3-hydroxy-styrylchromone, effectively suppresses the High Mobility Group Box 1 (HMGB1)-Receptor for Advanced Glycation End-products (RAGE) pathway, offering dual anti-inflammatory and anti-cancer benefits.
Area of Science:
- Oncology
- Immunology
- Medicinal Chemistry
Background:
- The High Mobility Group Box 1 (HMGB1)-Receptor for Advanced Glycation End-products (RAGE) axis is implicated in inflammation and cancer development.
- Papaverine demonstrates potential in suppressing this axis and inhibiting cancer cell proliferation.
Purpose of the Study:
- To identify novel therapeutic agents targeting the HMGB1-RAGE pathway for cancer treatment.
- To explore compounds that exhibit dual anti-inflammatory and anti-cancer properties.
Main Methods:
- Utilized LigandScout software to screen a chemical library for papaverine pharmacophore mimetics.
- Assessed anti-inflammatory activity using a HMGB1-RAGE-mediated interleukin-6 production assay in RAW264.7 cells.
- Employed molecular-biological techniques, including Western blotting, to elucidate mechanisms of action.
Main Results:
- Identified 6-methoxy-3-hydroxy-styrylchromone as a potent inhibitor of the HMGB1-RAGE-extracellular signal-regulated kinase 1/2 pathway.
- Demonstrated significant anti-inflammatory and anti-cancer activities for this compound.
- Pharmacophore-activity relationship analysis highlighted the importance of a C4' hydroxyl group for dual suppressive effects.
Conclusions:
- The identified styrylchromone derivative serves as a promising scaffold for developing novel anti-cancer drugs with inherent anti-inflammatory capabilities.
- This compound can be a valuable tool for further research into the inflammation-carcinogenesis link.
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