Related Experiment Video
Updated: May 27, 2025

Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
Betulinic Acid Inhibits Glioma Progression by Inducing Ferroptosis Through the PI3K/Akt and NRF2/HO-1 Pathways
Jinxiang Huang1,2, Qixuan Li1,2, Hongxiang Wang3
1Department of Neurosurgery, Neurosurgery Research Institute, The First Affiliated Hospital of Fujian Medical University, Fuzhou, China.
Background:
Gliomas currently have a poor prognosis and limited therapy options. Betulinic acid (BA) has demonstrated antitumor activity in various cancers. This study is aimed at clarifying the underlying mechanisms by which BA inhibits gliomas.
Methods:
We assessed how BA affected the migration, apoptosis, invasion, proliferation, and viability of U251 glioma cells. The genes that were differentially expressed after BA treatment were identified via RNA sequencing. Utilizing Gene Ontology and the Kyoto Encyclopedia of Genes and Genomes, research was done to determine the affected pathways. Molecular docking was applied to explore the interaction of BA with key pathway molecules. Experimental assays were conducted to confirm the impact of BA on these pathways and targets.
Results:
In U251 cells, BA reduced viability; inhibited colony formation, migration, and invasion; and triggered apoptosis. Through RNA sequencing, 923 up- and 1469 downregulated genes were found, with notable enrichment in the TNF, PI3K-Akt, and ferroptosis pathways. BA can stably bind to TNF and PI3K-Akt pathway molecules, especially AKT1 (binding energy = -10.2 kcal/mol). BA administration decreased the levels of phosphorylated PI3K and AKT. Moreover, BA-induced ferroptosis and HO-1 and NRF2 levels were increased. Ferrostatin-1 and zinc protoporphyrin pretreatment decreased intracellular iron and lipid peroxidation and decreased the decrease in cell viability caused by BA.
Conclusions:
BA controls the PI3K/Akt and NRF2/HO-1 pathways, which results in glioma ferroptosis. Understanding BA's multipathway mechanism may inform its therapeutic potential in glioma treatment.
Insights
Betulinic acid (BA) inhibits glioma cell growth by inducing apoptosis and ferroptosis. It targets the PI3K/Akt and NRF2/HO-1 pathways, offering potential for new glioma treatments.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Gliomas present a significant therapeutic challenge with poor prognoses.
- Betulinic acid (BA) exhibits known antitumor properties across various cancer types.
- The precise mechanisms of BA's anti-glioma effects require elucidation.
Purpose of the Study:
- To investigate the molecular mechanisms underlying betulinic acid's inhibition of glioma cells.
- To identify key cellular pathways and molecular targets affected by BA treatment in gliomas.
Main Methods:
- Assessed effects of BA on U251 glioma cell viability, migration, invasion, proliferation, and apoptosis.
- Utilized RNA sequencing to identify differentially expressed genes and affected pathways (GO, KEGG).
- Employed molecular docking and experimental assays to validate BA interactions with pathway targets.
Main Results:
- BA significantly reduced glioma cell viability, colony formation, migration, and invasion, while inducing apoptosis.
- RNA sequencing revealed differential expression of 923 up- and 1469 downregulated genes, implicating TNF, PI3K-Akt, and ferroptosis pathways.
- BA demonstrated stable binding to TNF and PI3K-Akt pathway molecules (e.g., AKT1), reduced p-PI3K/AKT, and increased ferroptosis, HO-1, and NRF2 levels.
Conclusions:
- Betulinic acid exerts anti-glioma effects by modulating the PI3K/Akt and NRF2/HO-1 pathways, leading to ferroptosis.
- BA's multifaceted mechanism suggests significant therapeutic potential for glioma treatment.
More Related Videos
11:13Author Spotlight: Exploring Salidroside's Molecular Mechanisms in Breast Cancer Treatment
Published on: June 9, 2023
10:28Flow Cytometry-based Drug Screening System for the Identification of Small Molecules That Promote Cellular Differentiation of Glioblastoma Stem Cells
Published on: January 10, 2018
Related Concept Videos
PI3K/mTOR/AKT Signaling Pathway
mTOR Signaling and Cancer Progression
The mTOR pathway or the...
Drugs that Stabilize Microtubules