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.

Oncology Reports
|April 3, 2020
PubMed

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.

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