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Updated: Jun 26, 2025

Three-Dimensional Bone Extracellular Matrix Model for Osteosarcoma
Published on: April 12, 2019
Investigating the molecular mechanism of Mori Cortex against osteosarcoma by bioinformatics analysis and in vitro
Yuanhui Wang1,2, Ling Wang3, Dongke Xie1,2
1Pediatric Surgery, The Affiliated Hospital of Southwest Medical University, Luzhou, China.
Objective:
To explore the therapeutic mechanism of Mori Cortex against osteosarcoma (OS), we conducted bioinformatics prediction followed by in vitro experimental validation.
Methods:
Gene expression data from normal and OS tissues were obtained from the GEO database and underwent differential analysis. Active Mori Cortex components and target genes were extracted from the Traditional Chinese Medicine System Pharmacology database. By intersecting these targets with differentially expressed genes in OS, we identified potential drug action targets. Using the STRING database, a protein-protein interaction network was constructed. Subsequent analyses of these intersected genes, including Gene Ontology enrichment and Kyoto Encyclopedia of Genes and Genomes pathway enrichment, were performed using R software to elucidate biological processes, molecular functions, and cellular components, resulting in the simulation of signaling pathways. Molecular docking assessed the binding capacity of small molecules to signaling pathway targets. In vitro validations were conducted on U-2 OS cells. The CCK8 assay was used to determine drug-induced cytotoxicity in OS cells, and Western Blotting was employed to validate the expression of AKT, extracellular signal-regulated kinases (ERK), Survivin, and Cyclin D1 proteins.
Results:
Through differential gene expression analysis between normal and OS tissues, we identified 12,364 differentially expressed genes. From the TCSMP database, 39 active components and 185 therapeutic targets related to OS were derived. The protein-protein interaction network indicated that AKT1, IL-6, JUN, VEGFA, and CASP3 might be central targets of Mori Cortex for OS. Molecular docking revealed that the active compound Morusin in Mori Cortex exhibits strong binding affinity to AKT and ERK. The CCK8 assay showed that Morusin significantly inhibits the viability of U-2 OS cells. Western Blot demonstrated a reduction in the p-AKT/AKT ratio, the p-ERK/ERK ratio, Survivin, and Cyclin D1.
Conclusion:
Mori Cortex may exert its therapeutic effects on OS through multiple cellular signaling pathways. Morusin, the active component of Mori Cortex, can inhibit cell cycle regulation and promote cell death in OS cells by targeting AKT/ERK pathway.
Insights
Mori Cortex shows therapeutic potential against osteosarcoma (OS) by inhibiting cell viability and targeting the AKT/ERK pathway. Its active compound, Morusin, reduces key protein expressions involved in cell cycle regulation and promotes cell death.
Area of Science:
- Oncology
- Pharmacology
- Bioinformatics
Background:
- Osteosarcoma (OS) is a primary bone malignancy with limited effective treatments.
- Mori Cortex, a traditional Chinese medicine, has shown potential anti-cancer properties.
- Understanding its therapeutic mechanism in OS is crucial for developing novel treatments.
Purpose of the Study:
- To elucidate the therapeutic mechanism of Mori Cortex against osteosarcoma (OS).
- To identify key molecular targets and pathways involved in Mori Cortex's anti-OS activity.
- To validate the efficacy of Mori Cortex's active component, Morusin, in vitro.
Main Methods:
- Bioinformatic analysis of gene expression data from normal and OS tissues.
- Identification of Mori Cortex active components and their targets using the Traditional Chinese Medicine System Pharmacology database.
- Construction of a protein-protein interaction network and pathway enrichment analysis.
- Molecular docking to assess binding affinity of Morusin to target proteins.
- In vitro validation using CCK8 assays and Western Blotting on U-2 OS cells.
Main Results:
- Identified 12,364 differentially expressed genes in OS tissues.
- Mori Cortex targets AKT1, IL-6, JUN, VEGFA, and CASP3 as potential central mediators.
- Morusin demonstrated strong binding affinity to AKT and ERK pathways.
- Morusin significantly inhibited U-2 OS cell viability and reduced p-AKT, p-ERK, Survivin, and Cyclin D1 expression.
Conclusions:
- Mori Cortex exerts therapeutic effects on OS via multiple signaling pathways.
- Morusin, a key component, targets the AKT/ERK pathway to inhibit cell cycle regulation and induce apoptosis in OS cells.
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