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Updated: Jan 23, 2026

Quantitative PCR-based Assay to Measure Sonic Hedgehog Signaling in Cellular Model of Ciliogenesis
Published on: January 31, 2025
CDK7 inhibition suppresses aberrant hedgehog pathway and overcomes resistance to smoothened antagonists
Fang Liu1, Wenyan Jiang1, Yi Sui1
1Key Laboratory of Cell Differentiation and Apoptosis of National Ministry of Education, Department of Pathophysiology, Shanghai Jiao Tong University School of Medicine, 200025 Shanghai, China.
Abstract:
The aberrant hedgehog (Hh) pathway plays important roles in multiple cancer types, therefore serving as a promising drug target. Current clinically available hedgehog-targeted drugs act mostly by antagonizing the upstream component smoothened; however, both primary and acquired resistance to FDA-approved smoothened inhibitor (SMOi) drugs have been described. We have recently demonstrated that the BET inhibitor effectively suppresses SMOi-resistant Hh-driven cancers through antagonizing transcription of GLI1 and GLI2, the core transcriptional factors of Hh pathway, suggesting epigenetic or transcriptional targeted therapy represents an anti-Hh therapeutic strategy that can overcome SMOi resistance. Here we performed an unbiased screening of epigenetic or transcriptional targeted small molecules to test their inhibitory effects on GLI1 and GLI2 transcription or cell viability of Hh-driven tumor lines. THZ1, a covalent inhibitor of cyclin-dependent kinase 7 (CDK7), is identified as the top hit in our screening. We then confirmed that antagonizing CDK7 by either small-molecule inhibitors or the CRISPR-Cas9 approach causes substantial suppression of GLI1 and GLI2 transcription, resulting in effective inhibition of Hh-driven cancers in vitro and in vivo. More importantly, antagonizing CDK7 retains inhibitory activity against Hh-driven cancers with almost all so-far described primary or acquired SMOi resistance. Furthermore, we reveal a synergy between CDK7 inhibition and BET inhibition on antagonizing aberrant Hh pathway and Hh-driven cancers that are either responsive or resistant to SMOi. Our results illustrate transcriptional inhibition through targeting CDK7 as a promising therapeutic strategy for treating Hh-driven cancers, especially those with primary or acquired resistance to SMOi drugs.
Insights
Targeting cyclin-dependent kinase 7 (CDK7) effectively inhibits hedgehog (Hh)-driven cancers, including those resistant to smoothened inhibitors (SMOi). CDK7 inhibition offers a promising therapeutic strategy for overcoming drug resistance in Hh pathway cancers.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Aberrant hedgehog (Hh) signaling drives multiple cancers, making it a key therapeutic target.
- Current smoothened inhibitor (SMOi) drugs face primary and acquired resistance, necessitating alternative strategies.
- BET inhibitors show promise against SMOi-resistant cancers by targeting GLI1/GLI2 transcription.
Purpose of the Study:
- To screen epigenetic or transcriptional inhibitors for efficacy against Hh-driven cancers.
- To identify novel therapeutic targets that overcome SMOi resistance.
- To evaluate the potential of targeting cyclin-dependent kinase 7 (CDK7) in Hh-driven cancers.
Main Methods:
- Unbiased screening of small molecules targeting epigenetic or transcriptional pathways.
- Assessing inhibitory effects on GLI1/GLI2 transcription and cell viability in Hh-driven tumor lines.
- Utilizing small-molecule inhibitors and CRISPR-Cas9 to antagonize CDK7.
Main Results:
- THZ1, a CDK7 inhibitor, emerged as a top hit in screening.
- CDK7 inhibition significantly suppressed GLI1/GLI2 transcription and Hh-driven cancers in vitro and in vivo.
- CDK7 inhibition demonstrated efficacy against SMOi-resistant Hh-driven cancers.
- Synergistic effects were observed between CDK7 and BET inhibition.
Conclusions:
- Targeting CDK7 via transcriptional inhibition is a viable strategy for treating Hh-driven cancers.
- CDK7 inhibition effectively overcomes primary and acquired resistance to SMOi drugs.
- Combined CDK7 and BET inhibition presents a potent approach for managing Hh-driven cancers.
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