Triptolide Induces Cell Killing in Multidrug-Resistant Tumor Cells via CDK7/RPB1 Rather than XPB or p44

Jun-Mei Yi1, Xia-Juan Huan1, Shan-Shan Song1

  • 1Division of Antitumor Pharmacology, State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Chinese Academy of Sciences, Shanghai, P.R. China.

Insights

Triptolide effectively kills multidrug-resistant (MDR) tumor cells by inhibiting transcription via RNA polymerase II subunit RPB1. This natural compound offers a potential strategy to overcome tumor treatment failure and MDR.

Area of Science:

  • Molecular Pharmacology
  • Cancer Therapeutics
  • Drug Resistance Mechanisms

Background:

  • Multidrug resistance (MDR) is a significant obstacle in cancer treatment, leading to therapeutic failure.
  • Novel therapeutic agents are crucial to overcome MDR and improve patient outcomes.
  • Triptolide, a natural compound, has shown potential but its mechanism against MDR remains under investigation.

Purpose of the Study:

  • To elucidate the molecular mechanism by which triptolide overcomes multidrug resistance (MDR) in tumor cells.
  • To identify the key molecular targets involved in triptolide's anti-MDR activity.
  • To explore the potential of triptolide as a therapeutic agent for MDR cancers.

Main Methods:

  • Investigated triptolide's effect on MDR tumor cells, focusing on P-glycoprotein (P-gp) and MDR1 mRNA levels.
  • Assessed the role of transcription factors (c-MYC, SOX-2, OCT-4, NANOG) and RNA polymerase II subunit RPB1.
  • Utilized CDK7 activation and phosphorylation at Thr170 as a key indicator of triptolide's mechanism, confirmed with CDK7 inhibitor BS-181.

Main Results:

  • Triptolide directly kills MDR tumor cells, independent of P-gp efflux inhibition, by suppressing transcription.
  • RPB1, the largest subunit of RNA polymerase II, is critical for triptolide's anti-MDR effects.
  • Triptolide activates CDK7, leading to RPB1 phosphorylation at Ser1878, which is essential for its activity.

Conclusions:

  • Triptolide exhibits potent anti-tumor and anti-MDR activity through a novel mechanism involving CDK7-mediated RPB1 phosphorylation.
  • This mechanism offers a new strategy to overcome tumor MDR and warrants further clinical investigation.
  • Triptolide represents a promising compound for expanding therapeutic options against drug-resistant cancers.

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