Discovery and Characterization of SY-1365, a Selective, Covalent Inhibitor of CDK7
Shanhu Hu1, Jason J Marineau2, Nisha Rajagopal2
1Syros Pharmaceuticals, Inc., Cambridge, Massachusetts. shu@syros.com.
Abstract:
Recent studies suggest that targeting transcriptional machinery can lead to potent and selective anticancer effects in cancers dependent on high and constant expression of certain transcription factors for growth and survival. Cyclin-dependent kinase 7 (CDK7) is the catalytic subunit of the CDK-activating kinase complex. Its function is required for both cell-cycle regulation and transcriptional control of gene expression. CDK7 has recently emerged as an attractive cancer target because its inhibition leads to decreased transcript levels of oncogenic transcription factors, especially those associated with super-enhancers. Here, we describe a selective CDK7 inhibitor SY-1365, which is currently in clinical trials in populations of patients with ovarian and breast cancer (NCT03134638). In vitro, SY-1365 inhibited cell growth of many different cancer types at nanomolar concentrations. SY-1365 treatment decreased MCL1 protein levels, and cancer cells with low BCL2L1 (BCL-XL) expression were found to be more sensitive to SY-1365. Transcriptional changes in acute myeloid leukemia (AML) cell lines were distinct from those following treatment with other transcriptional inhibitors. SY-1365 demonstrated substantial antitumor effects in multiple AML xenograft models as a single agent; SY-1365-induced growth inhibition was enhanced in combination with the BCL2 inhibitor venetoclax. Antitumor activity was also observed in xenograft models of ovarian cancer, suggesting the potential for exploring SY-1365 in the clinic in both hematologic and solid tumors. Our findings support targeting CDK7 as a new approach for treating transcriptionally addicted cancers. SIGNIFICANCE: These findings demonstrate the molecular mechanism of action and potent antitumor activity of SY-1365, the first selective CDK7 inhibitor to enter clinical investigation.
Insights
A new drug, SY-1365, targets cyclin-dependent kinase 7 (CDK7) to treat cancers. This selective inhibitor shows potent anticancer effects in preclinical models and is now in clinical trials for ovarian and breast cancers.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Targeting transcriptional machinery offers a strategy for potent and selective anticancer effects.
- Cyclin-dependent kinase 7 (CDK7) is crucial for cell-cycle regulation and gene transcription, making it an attractive cancer target.
- CDK7 inhibition reduces oncogenic transcription factors, particularly those linked to super-enhancers.
Purpose of the Study:
- To describe the selective CDK7 inhibitor SY-1365.
- To evaluate the in vitro and in vivo antitumor activity of SY-1365.
- To explore the potential of SY-1365 in treating transcriptionally addicted cancers.
Main Methods:
- In vitro cell growth inhibition assays across various cancer types.
- Assessment of protein level changes (e.g., MCL1) and sensitivity based on BCL2L1 expression.
- Evaluation of transcriptional changes in acute myeloid leukemia (AML) cell lines.
- In vivo efficacy studies using AML and ovarian cancer xenograft models, including combination therapy with venetoclax.
Main Results:
- SY-1365 demonstrated potent in vitro inhibition of cancer cell growth at nanomolar concentrations.
- Treatment with SY-1365 led to decreased MCL1 protein levels, with greater sensitivity in cells having low BCL2L1 expression.
- SY-1365 showed significant antitumor effects as a single agent in AML xenografts and enhanced efficacy when combined with venetoclax.
- Antitumor activity was also observed in ovarian cancer xenograft models.
Conclusions:
- SY-1365 is the first selective CDK7 inhibitor to enter clinical trials.
- Targeting CDK7 represents a promising therapeutic approach for transcriptionally addicted cancers.
- SY-1365 exhibits potent molecular mechanisms and antitumor activity, supporting its clinical investigation in both hematologic and solid tumors.
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