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.

Cancer Research
|July 4, 2015
PubMed

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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