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CD Spectroscopy to Study DNA-Protein Interactions
Published on: February 10, 2022
The SMARCA2/4 ATPase Domain Surpasses the Bromodomain as a Drug Target in SWI/SNF-Mutant Cancers: Insights from cDNA
Bhavatarini Vangamudi1, Thomas A Paul2, Parantu K Shah1
1Institute for Applied Cancer Science, The University of Texas MD Anderson Cancer Center, TX.
Abstract:
The SWI/SNF multisubunit complex modulates chromatin structure through the activity of two mutually exclusive catalytic subunits, SMARCA2 and SMARCA4, which both contain a bromodomain and an ATPase domain. Using RNAi, cancer-specific vulnerabilities have been identified in SWI/SNF-mutant tumors, including SMARCA4-deficient lung cancer; however, the contribution of conserved, druggable protein domains to this anticancer phenotype is unknown. Here, we functionally deconstruct the SMARCA2/4 paralog dependence of cancer cells using bioinformatics, genetic, and pharmacologic tools. We evaluate a selective SMARCA2/4 bromodomain inhibitor (PFI-3) and characterize its activity in chromatin-binding and cell-functional assays focusing on cells with altered SWI/SNF complex (e.g., lung, synovial sarcoma, leukemia, and rhabdoid tumors). We demonstrate that PFI-3 is a potent, cell-permeable probe capable of displacing ectopically expressed, GFP-tagged SMARCA2-bromodomain from chromatin, yet contrary to target knockdown, the inhibitor fails to display an antiproliferative phenotype. Mechanistically, the lack of pharmacologic efficacy is reconciled by the failure of bromodomain inhibition to displace endogenous, full-length SMARCA2 from chromatin as determined by in situ cell extraction, chromatin immunoprecipitation, and target gene expression studies. Furthermore, using inducible RNAi and cDNA complementation (bromodomain- and ATPase-dead constructs), we unequivocally identify the ATPase domain, and not the bromodomain of SMARCA2, as the relevant therapeutic target with the catalytic activity suppressing defined transcriptional programs. Taken together, our complementary genetic and pharmacologic studies exemplify a general strategy for multidomain protein drug-target validation and in case of SMARCA2/4 highlight the potential for drugging the more challenging helicase/ATPase domain to deliver on the promise of synthetic-lethality therapy.
Insights
Targeting the ATPase domain of SMARCA2, not its bromodomain, is key for synthetic-lethality cancer therapies in SWI/SNF-mutant tumors. This finding guides future drug development for challenging targets.
Area of Science:
- Molecular Biology
- Cancer Therapeutics
- Chromatin Biology
Background:
- The SWI/SNF complex, with catalytic subunits SMARCA2 and SMARCA4, regulates chromatin structure.
- SMARCA4-deficient cancers present vulnerabilities, but the role of specific protein domains in therapeutic response is unclear.
Purpose of the Study:
- To investigate the functional contribution of SMARCA2/4 protein domains (bromodomain and ATPase) to cancer cell dependence.
- To evaluate the therapeutic potential of targeting these domains, specifically using the bromodomain inhibitor PFI-3.
Main Methods:
- Bioinformatics, genetic (RNAi, cDNA complementation), and pharmacologic approaches were employed.
- Chromatin-binding assays, cell-functional assays, and gene expression studies were conducted.
- In situ cell extraction and chromatin immunoprecipitation were used to assess protein localization.
Main Results:
- The selective SMARCA2/4 bromodomain inhibitor PFI-3 displaced ectopically expressed SMARCA2-bromodomain but failed to inhibit proliferation.
- Bromodomain inhibition did not displace endogenous full-length SMARCA2 from chromatin or affect target gene expression.
- Genetic studies identified the ATPase domain, not the bromodomain, as the critical therapeutic target for SMARCA2/4.
Conclusions:
- The ATPase domain of SMARCA2 is the relevant target for synthetic-lethality in SWI/SNF-mutant cancers.
- Targeting the ATPase domain offers a promising strategy for developing novel cancer therapies.
- This study provides a framework for validating drug targets in multidomain proteins.
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