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Selective CDK9 Inhibition by Natural Compound Toyocamycin in Cancer Cells
Somnath Pandey1, Rahinatou Djibo2,3, Anaïs Darracq2,3
1Fels Institute for Cancer Research and Molecular Biology, Temple University School of Medicine, Philadelphia, PA 19140, USA.
Abstract:
Aberrant transcription in cancer cells involves the silencing of tumor suppressor genes (TSGs) and activation of oncogenes. Transcriptomic changes are associated with epigenomic alterations such as DNA-hypermethylation, histone deacetylation, and chromatin condensation in promoter regions of silenced TSGs. To discover novel drugs that trigger TSG reactivation in cancer cells, we used a GFP-reporter system whose expression is silenced by promoter DNA hypermethylation and histone deacetylation. After screening a natural product drug library, we identified that toyocamycin, an adenosine-analog, induces potent GFP reactivation and loss of clonogenicity in human colon cancer cells. Connectivity-mapping analysis revealed that toyocamycin produces a pharmacological signature mimicking cyclin-dependent kinase (CDK) inhibitors. RNA-sequencing revealed that the toyocamycin transcriptomic signature resembles that of a specific CDK9 inhibitor (HH1). Specific inhibition of RNA Pol II phosphorylation level and kinase assays confirmed that toyocamycin specifically inhibits CDK9 (IC50 = 79 nM) with a greater efficacy than other CDKs (IC50 values between 0.67 and 15 µM). Molecular docking showed that toyocamycin efficiently binds the CDK9 catalytic site in a conformation that differs from other CDKs, explained by the binding contribution of specific amino acids within the catalytic pocket and protein backbone. Altogether, we demonstrated that toyocamycin exhibits specific CDK9 inhibition in cancer cells, highlighting its potential for cancer chemotherapy.
Insights
Toyocamycin, an adenosine analog, reactivates silenced tumor suppressor genes in colon cancer cells. This natural product specifically inhibits CDK9, showing potential for novel cancer chemotherapy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Aberrant gene transcription, including tumor suppressor gene (TSG) silencing and oncogene activation, is a hallmark of cancer.
- Epigenomic alterations like DNA hypermethylation and histone deacetylation silence TSGs.
- Novel therapeutic strategies are needed to reactivate TSGs in cancer cells.
Purpose of the Study:
- To screen for natural products that induce TSG reactivation in cancer cells.
- To identify the molecular mechanism of action for identified compounds.
- To evaluate the therapeutic potential of these compounds in cancer chemotherapy.
Main Methods:
- Utilized a GFP-reporter system to identify compounds inducing TSG reactivation.
- Screened a natural product drug library.
- Performed connectivity-mapping, RNA-sequencing, kinase assays, and molecular docking.
Main Results:
- Identified toyocamycin, an adenosine analog, that induces GFP reactivation and loss of clonogenicity in colon cancer cells.
- Toyocamycin's pharmacological signature mimics cyclin-dependent kinase (CDK) inhibitors, specifically CDK9.
- Toyocamycin potently and specifically inhibits CDK9 (IC50 = 79 nM) with greater efficacy than other CDKs.
Conclusions:
- Toyocamycin specifically inhibits CDK9 in cancer cells.
- Toyocamycin demonstrates potential as a novel therapeutic agent for cancer chemotherapy by reactivating TSGs.
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