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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.
Abstract:
Multidrug resistance (MDR) is a major cause of tumor treatment failure; therefore, drugs that can avoid this outcome are urgently needed. We studied triptolide, which directly kills MDR tumor cells with a high potency and a broad spectrum of cell death. Triptolide did not inhibit P-glycoprotein (P-gp) drug efflux and reduced P-gp and MDR1 mRNA resulting from transcription inhibition. Transcription factors including c-MYC, SOX-2, OCT-4, and NANOG were not correlated with triptolide-induced cell killing, but RPB1, the largest subunit of RNA polymerase II, was critical in mediating triptolide's inhibition of MDR cells. Triptolide elicited antitumor and anti-MDR activity through a universal mechanism: by activating CDK7 by phosphorylating Thr170 in both parental and MDR cell lines and in SK-OV-3 cells. The CDK7-selective inhibitor BS-181 partially rescued cell killing induced by 72-hour treatment of triptolide, which may be due to partial rescue of RPB1 degradation. We suggest that a precise phosphorylation site on RPB1 (Ser1878) was phosphorylated by CDK7 in response to triptolide. In addition, XPB and p44, two transcription factor TFIIH subunits, did not contribute to triptolide-driven RPB1 degradation and cell killing, although XPB was reported to covalently bind to triptolide. Several clinical trials are underway to test triptolide and its analogues for treating cancer and other diseases, so our data may help expand potential clinical uses of triptolide, as well as offer a compound that overcomes tumor MDR. Future investigations into the primary molecular target(s) of triptolide responsible for RPB1 degradation may suggest novel anti-MDR target(s) for therapeutic development. Mol Cancer Ther; 15(7); 1495-503. ©2016 AACR.
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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