Selective CDK9 inhibition overcomes TRAIL resistance by concomitant suppression of cFlip and Mcl-1
J Lemke1, S von Karstedt2, M Abd El Hay2
11] Centre for Cell Death, Cancer and Inflammation, UCL Cancer Institute, University College London, 72 Huntley Street, London WC1E 6DD, UK [2] Clinic of General and Visceral Surgery, University of Ulm, Albert-Einstein-Allee 23, 89081 Ulm, Germany.
Abstract:
Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) can induce apoptosis in many cancer cells without causing toxicity in vivo. However, to date, TRAIL-receptor agonists have only shown limited therapeutic benefit in clinical trials. This can, most likely, be attributed to the fact that 50% of all cancer cell lines and most primary human cancers are TRAIL resistant. Consequently, future TRAIL-based therapies will require the addition of sensitizing agents that remove crucial blocks in the TRAIL apoptosis pathway. Here, we identify PIK-75, a small molecule inhibitor of the p110α isoform of phosphoinositide-3 kinase (PI3K), as an exceptionally potent TRAIL apoptosis sensitizer. Surprisingly, PI3K inhibition was not responsible for this activity. A kinome-wide in vitro screen revealed that PIK-75 strongly inhibits a panel of 27 kinases in addition to p110α. Within this panel, we identified cyclin-dependent kinase 9 (CDK9) as responsible for TRAIL resistance of cancer cells. Combination of CDK9 inhibition with TRAIL effectively induced apoptosis even in highly TRAIL-resistant cancer cells. Mechanistically, CDK9 inhibition resulted in downregulation of cellular FLICE-like inhibitory protein (cFlip) and Mcl-1 at both the mRNA and protein levels. Concomitant cFlip and Mcl-1 downregulation was required and sufficient for TRAIL sensitization by CDK9 inhibition. When evaluating cancer selectivity of TRAIL combined with SNS-032, the most selective and clinically used inhibitor of CDK9, we found that a panel of mostly TRAIL-resistant non-small cell lung cancer cell lines was readily killed, even at low concentrations of TRAIL. Primary human hepatocytes did not succumb to the same treatment regime, defining a therapeutic window. Importantly, TRAIL in combination with SNS-032 eradicated established, orthotopic lung cancer xenografts in vivo. Based on the high potency of CDK9 inhibition as a cancer cell-selective TRAIL-sensitizing strategy, we envisage the development of new, highly effective cancer therapies.
Insights
Targeting cyclin-dependent kinase 9 (CDK9) sensitizes cancer cells to TRAIL-induced apoptosis by downregulating cFlip and Mcl-1. This combination therapy shows promise for treating TRAIL-resistant cancers, including lung cancer, with a defined therapeutic window.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) induces apoptosis in cancer cells but faces resistance in many cancers.
- TRAIL resistance limits the clinical efficacy of current TRAIL-based therapies.
- Sensitizing agents are needed to overcome resistance and enhance TRAIL-mediated apoptosis.
Purpose of the Study:
- To identify novel agents that can sensitize TRAIL-resistant cancer cells to TRAIL-induced apoptosis.
- To elucidate the mechanism by which these sensitizing agents overcome TRAIL resistance.
- To evaluate the therapeutic potential of combining TRAIL with a CDK9 inhibitor in preclinical cancer models.
Main Methods:
- A kinome-wide screen identified PIK-75 as a TRAIL apoptosis sensitizer.
- Investigated the role of PI3K and other kinases inhibited by PIK-75.
- Utilized cyclin-dependent kinase 9 (CDK9) inhibition in combination with TRAIL in cancer cell lines and in vivo xenograft models.
- Assessed the impact on apoptosis, cFlip, and Mcl-1 expression.
Main Results:
- PIK-75, a phosphoinositide-3 kinase (PI3K) inhibitor, demonstrated potent TRAIL sensitization, but PI3K inhibition was not the primary mechanism.
- CDK9 was identified as the key kinase responsible for TRAIL resistance.
- CDK9 inhibition downregulated both cellular FLICE-like inhibitory protein (cFlip) and Mcl-1, which was essential for TRAIL sensitization.
- Combination therapy with TRAIL and a CDK9 inhibitor (SNS-032) effectively killed TRAIL-resistant non-small cell lung cancer cells and eradicated tumors in vivo, with minimal toxicity to hepatocytes.
Conclusions:
- CDK9 inhibition is a potent strategy for sensitizing cancer cells to TRAIL-induced apoptosis.
- Downregulation of cFlip and Mcl-1 mediates TRAIL sensitization by CDK9 inhibition.
- TRAIL combined with CDK9 inhibitors represents a promising therapeutic approach for TRAIL-resistant cancers, demonstrating a therapeutic window and in vivo efficacy.
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