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Deciphering the Shared Mechanisms Underlying the Effects of Osthole on the Inflammation-Cancer Axis: An Integrative
Peng Tang1, Jing Yang2, Haoyi Wang1
1College of Pharmacy, Heilongjiang University of Chinese Medicine, Harbin 150040, China.
Abstract:
The persistence of an immunosuppressive microenvironment remains a formidable challenge for cancer immunotherapy, particularly in tumors with immune-excluded or immune-desert phenotypes. Increasing evidence indicates that chronic inflammation and tumor progression are intrinsically linked through shared signaling hubs, including NF-κB and PI3K/Akt. Osthole, a natural coumarin compound, has been reported to exhibit both potent anti-inflammatory and antitumor activities; however, whether these effects reflect a coordinated regulation of the inflammation-cancer axis remains unclear. In this study, we deployed an integrative framework founded on network pharmacology, molecular docking, and rigorous molecular dynamics simulations, complemented by literature-based evidence synthesis, to computationally explore the potential mechanisms underlying Osthole's dual activities. Our analysis revealed that Osthole's predicted targets are significantly enriched in signaling pathways bridging inflammatory and oncogenic processes, most notably the PI3K/Akt, NF-κB, and TGF-β/Smad pathways. Crucially, MD simulations provided supportive computational evidence, suggesting that Osthole forms stable, energetically favorable complexes with core protein hubs (AKT1, RELA, and TGFB1) under the simulated conditions. Evidence from representative inflammatory and tumor models supports the biological plausibility of these predictions, including suppression of pro-inflammatory signaling, mitigation of maladaptive tissue remodeling, and induction of apoptosis. Furthermore, in hepatocellular carcinoma models, Osthole-mediated apoptosis appeared linked to HMGB1-related inflammatory signaling, highlighting its potential to modulate the local immune niche. Collectively, this convergence of systems-level predictions and dynamic structural evidence identifies Osthole as a promising multi-target candidate for the coordinated regulation of inflammation-associated tumor progression, providing a robust rationale for further experimental validation.
Insights
Osthole, a natural compound, shows potential for cancer therapy by simultaneously targeting inflammation and tumor growth pathways. Computational analysis suggests it can modulate key signaling hubs, offering a new strategy for difficult-to-treat cancers.
Area of Science:
- Computational biology
- Pharmacology
- Immunology
Background:
- The tumor microenvironment's immunosuppressive nature hinders cancer immunotherapy effectiveness.
- Chronic inflammation and tumor progression share common signaling pathways like NF-κB and PI3K/Akt.
- Osthole, a natural coumarin, has known anti-inflammatory and antitumor effects, but its mechanism on the inflammation-cancer axis is unclear.
Purpose of the Study:
- To computationally investigate Osthole's mechanisms for regulating the inflammation-cancer axis.
- To explore Osthole's potential as a multi-target therapeutic agent.
Main Methods:
- Network pharmacology
- Molecular docking
- Molecular dynamics simulations
- Literature-based evidence synthesis
Main Results:
- Osthole targets are enriched in pathways linking inflammation and oncogenesis (PI3K/Akt, NF-κB, TGF-β/Smad).
- Molecular dynamics simulations confirm stable Osthole binding to key proteins (AKT1, RELA, TGFB1).
- Evidence supports Osthole's ability to suppress inflammation, reduce tissue remodeling, and induce apoptosis, particularly linked to HMGB1 signaling in liver cancer.
Conclusions:
- Osthole is a promising multi-target candidate for coordinated regulation of inflammation-associated tumor progression.
- Computational findings provide a strong rationale for experimental validation of Osthole's therapeutic potential.
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