Related Experiment Video
Updated: Dec 25, 2025

Network Pharmacology Prediction and Experimental Validation of Trichosanthes-Fritillaria thunbergii Action Mechanism Against Lung Adenocarcinoma
Published on: March 3, 2023
Triptolide interrupts rRNA synthesis and induces the RPL23‑MDM2‑p53 pathway to repress lung cancer cells
Juan Wang1, Zhi-Qian Zhang2, Fang-Qiong Li1
1Department of Clinical Laboratory, Tongde Hospital of Zhejiang Province, Hangzhou, Zhejiang 310012, P.R. China.
Abstract:
Lung cancer has one of the highest mortalities of any cancer worldwide. Triptolide (TP) is a promising tumor suppressor extracted from the Chinese herb Tripterygium wilfordii. Our previous proteomics analysis revealed that TP significantly interfered with the ribosome biogenesis pathway; however, the underlying molecular mechanism remains poorly understood. The aim of the present study was to determine the molecular mechanism of TP's anticancer effect by investigating the association between ribosomal stress and p53 activation. It was found that TP induces nucleolar disintegration together with RNA polymerase I (Pol I) and upstream binding factor (UBF) translocation. TP interrupted ribosomal (r)RNA synthesis through inhibition of RNA Pol I and UBF transcriptional activation. TP treatment increased the binding of ribosomal protein L23 (RPL23) to mouse double minute 2 protein (MDM2), resulting in p53 being released from MDM2 and stabilized. Activation of p53 induced apoptosis and cell cycle arrest by enhancing the activation of p53 upregulated modulator of apoptosis, caspase 9 and caspase 3, and suppressing BCL2. In vivo experiments showed that TP significantly reduced xenograft tumor size and increased mouse body weight. Immunohistochemical assays confirmed that TP significantly increased the p53 level and induced nucleolus disintegration, during which nucleolin distribution moved from the nucleolus to the nucleoplasm, and RPL23 clustered at the edge of the cell membrane. Therefore, it was proposed that TP induces ribosomal stress, which leads to nucleolus disintegration, and inhibition of rRNA transcription and synthesis, resulting in increased binding of RPL23 with MDM2. Consequently, p53 is activated, which induces apoptosis and cell cycle arrest.
Insights
Triptolide (TP) triggers ribosomal stress, causing nucleolar disintegration and inhibiting rRNA synthesis. This activates p53, leading to apoptosis and cell cycle arrest, offering a new lung cancer treatment strategy.
Area of Science:
- Molecular Biology
- Cancer Research
- Pharmacology
Background:
- Lung cancer exhibits high global mortality.
- Triptolide (TP), a tumor suppressor from Tripterygium wilfordii, shows potential but its mechanism is unclear.
- Previous studies indicated TP interferes with ribosome biogenesis.
Purpose of the Study:
- To elucidate the molecular mechanism of TP's anticancer effects.
- To investigate the link between ribosomal stress and p53 activation by TP.
- To understand TP's impact on rRNA synthesis and apoptosis pathways.
Main Methods:
- Investigated TP's effects on nucleolar structure and RNA polymerase I (Pol I) activity.
- Assessed the interaction between ribosomal protein L23 (RPL23) and MDM2.
- Analyzed p53 activation, downstream apoptosis markers (caspase 9, caspase 3, BCL2), and cell cycle arrest.
- Conducted in vivo xenograft tumor models and immunohistochemical analyses.
Main Results:
- TP induced nucleolar disintegration and translocation of RNA Pol I and UBF.
- TP inhibited rRNA synthesis by suppressing RNA Pol I and UBF transcriptional activity.
- TP treatment increased RPL23 binding to MDM2, stabilizing and activating p53.
- Activated p53 enhanced apoptosis and cell cycle arrest.
- In vivo studies showed TP reduced tumor size and increased mouse weight.
- Immunohistochemistry confirmed increased p53 levels and nucleolar disintegration in tumors.
Conclusions:
- TP induces ribosomal stress, leading to nucleolar disintegration and inhibited rRNA synthesis.
- TP-induced ribosomal stress activates p53 through the RPL23-MDM2 interaction.
- Activated p53 triggers apoptosis and cell cycle arrest, demonstrating TP's anticancer efficacy.
- TP presents a promising therapeutic agent for lung cancer by targeting ribosome biogenesis and p53 activation.
Related Concept Videos
Abnormal Proliferation
Negative Regulator Molecules
Treatment Resistant Cancers
piRNA - Piwi-interacting RNAs
Non-LTR Retrotransposons
Drugs that Stabilize Microtubules

