Noncanonical hedgehog pathway activation through SRF-MKL1 promotes drug resistance in basal cell carcinomas
Ramon J Whitson1,2, Alex Lee3, Nicole M Urman2
1Program in Epithelial Biology, Stanford University School of Medicine, Stanford, California, USA.
Abstract:
Hedgehog pathway-dependent cancers can escape Smoothened (SMO) inhibition through mutations in genes encoding canonical hedgehog pathway components; however, around 50% of drug-resistant basal cell carcinomas (BCCs) lack additional variants of these genes. Here we use multidimensional genomics analysis of human and mouse drug-resistant BCCs to identify a noncanonical hedgehog activation pathway driven by the transcription factor serum response factor (SRF). Active SRF along with its coactivator megakaryoblastic leukemia 1 (MKL1) binds DNA near hedgehog target genes and forms a previously unknown protein complex with the hedgehog transcription factor glioma-associated oncogene family zinc finger-1 (GLI1), causing amplification of GLI1 transcriptional activity. We show that cytoskeletal activation through Rho and the formin family member Diaphanous (mDia) is required for SRF-MKL-driven GLI1 activation and for tumor cell viability. Remarkably, nuclear MKL1 staining served as a biomarker in tumors from mice and human subjects to predict tumor responsiveness to MKL inhibitors, highlighting the therapeutic potential of targeting this pathway. Thus, our study illuminates, for the first time, cytoskeletal-activation-driven transcription as a personalized therapeutic target for combatting drug-resistant malignancies.
Insights
Drug-resistant cancers can evade treatment. This study identifies a new pathway involving serum response factor (SRF) and megakaryoblastic leukemia 1 (MKL1) that drives cancer growth, offering a novel therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Hedgehog pathway is crucial in cancer, but drug resistance develops.
- Many drug-resistant basal cell carcinomas (BCCs) lack known resistance mutations.
- A noncanonical pathway driving resistance remains unidentified.
Purpose of the Study:
- To identify novel mechanisms of drug resistance in BCC.
- To elucidate the role of noncanonical pathways in Hedgehog-dependent cancers.
- To explore new therapeutic targets for resistant malignancies.
Main Methods:
- Multidimensional genomics analysis of human and mouse BCC models.
- Investigation of transcription factor activity and protein complex formation.
- Assessment of cytoskeletal activation's role in tumor cell viability.
Main Results:
- A novel pathway driven by serum response factor (SRF) and megakaryoblastic leukemia 1 (MKL1) was identified.
- SRF-MKL1 forms a complex with GLI1, amplifying transcriptional activity.
- Cytoskeletal activation via Rho and mDia is essential for this pathway and tumor survival.
- Nuclear MKL1 staining predicts response to MKL inhibitors.
Conclusions:
- Cytoskeletal-activation-driven transcription is a novel mechanism in drug-resistant cancers.
- Targeting the SRF-MKL1-GLI1 axis presents a potential therapeutic strategy.
- Nuclear MKL1 serves as a predictive biomarker for treatment response.
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