Targeting transcription regulation in cancer with a covalent CDK7 inhibitor
Nicholas Kwiatkowski1, Tinghu Zhang2, Peter B Rahl3
11] Department of Cancer Biology, Dana-Farber Cancer Institute, Boston, Massachusetts 02115, USA [2] Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, Massachusetts 02115, USA [3] Whitehead Institute for Biomedical Research, 9 Cambridge Center, Cambridge, Massachusetts 02142, USA [4].
Abstract:
Tumour oncogenes include transcription factors that co-opt the general transcriptional machinery to sustain the oncogenic state, but direct pharmacological inhibition of transcription factors has so far proven difficult. However, the transcriptional machinery contains various enzymatic cofactors that can be targeted for the development of new therapeutic candidates, including cyclin-dependent kinases (CDKs). Here we present the discovery and characterization of a covalent CDK7 inhibitor, THZ1, which has the unprecedented ability to target a remote cysteine residue located outside of the canonical kinase domain, providing an unanticipated means of achieving selectivity for CDK7. Cancer cell-line profiling indicates that a subset of cancer cell lines, including human T-cell acute lymphoblastic leukaemia (T-ALL), have exceptional sensitivity to THZ1. Genome-wide analysis in Jurkat T-ALL cells shows that THZ1 disproportionally affects transcription of RUNX1 and suggests that sensitivity to THZ1 may be due to vulnerability conferred by the RUNX1 super-enhancer and the key role of RUNX1 in the core transcriptional regulatory circuitry of these tumour cells. Pharmacological modulation of CDK7 kinase activity may thus provide an approach to identify and treat tumour types that are dependent on transcription for maintenance of the oncogenic state.
Insights
Researchers discovered THZ1, a novel covalent inhibitor targeting cyclin-dependent kinase 7 (CDK7). This drug shows exceptional sensitivity in certain cancer cell lines, like T-cell acute lymphoblastic leukaemia, by disrupting key transcription factors.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Transcription factors are crucial for maintaining the oncogenic state but are difficult to target directly.
- Enzymatic cofactors of the transcriptional machinery, such as cyclin-dependent kinases (CDKs), present viable therapeutic targets.
Purpose of the Study:
- To discover and characterize a novel covalent inhibitor of CDK7.
- To investigate the therapeutic potential of targeting CDK7 in cancer, particularly in T-cell acute lymphoblastic leukaemia (T-ALL).
Main Methods:
- Discovery and characterization of the covalent CDK7 inhibitor THZ1.
- Cancer cell line profiling to assess sensitivity to THZ1.
- Genome-wide analysis in Jurkat T-ALL cells to understand THZ1's mechanism of action.
Main Results:
- THZ1 selectively inhibits CDK7 by targeting a remote cysteine residue outside the canonical kinase domain.
- A subset of cancer cell lines, including T-ALL, exhibit exceptional sensitivity to THZ1.
- THZ1 disproportionally affects RUNX1 transcription in Jurkat T-ALL cells, suggesting a role for the RUNX1 super-enhancer in sensitivity.
Conclusions:
- Targeting CDK7 kinase activity with inhibitors like THZ1 offers a potential therapeutic strategy for cancers dependent on transcription for their oncogenic state.
- RUNX1 and its regulatory circuitry may be key determinants of sensitivity to CDK7 inhibition in T-ALL.
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