2019bioRxiv (Cold Spring Harbor Laboratory)Open access

In-Depth Characterization and Validation in BRG1 -Mutant Lung Cancers Define Novel Catalytic Inhibitors of SWI/SNF Chromatin Remodeling

Zainab Jagani, Gregg Chenail, Kay X. Xiang, Geoffrey Bushold, Hyo‐eun C. Bhang, Ailing Li, GiNell Elliott, Jiang Zhu, Anthony Vattay, Tamara J. Gilbert, Anka Bric, Rie Kikkawa, Valérie Dubost, Rémi Terranova, John Cantwell, Catherine A. Luu, Serena J. Silver, Matt Shirley, François Huet, Rob Maher, John Reece-Hoyes, David A. Ruddy, Daniel P. Rakiec, Joshua M. Korn, Carsten Russ, Vera M. Ruda, Julia Dooley, Emily A. Costa, Isabel Park, Henrik Moebitz, Katsumasa Nakajima, Christopher D. Adair, Simon Mathieu, Rukundo Ntaganda, Troy Smith, David Farley, Daniel King, Xiaoling Xie, Raviraj Kulathila, Tiancen Hu, Xuewen Pan, Qicheng Ma, Katarina Vulic, Florencia Rago, Scott Clarkson, Robin Ge, Frederic Sigoillot, Gwynn Pardee, Linda Bagdasarian, Margaret E. McLaughlin, Kristy Haas, Jan Weiler, Steve G. Kovats, Mariela Jaskelioff, Marie Apolline-Gerard, Johanna Beil, Ulrike Naumann, Pascal D. Fortin, Frank Stegmeier, Michael Acker, Juliet Williams, Matthew J. Meyer, James E. Bradner, Nicholas Keen, William R. Sellers, Francesco Hofmann, Jeffrey A. Engelman, Darrin D. Stuart, Julien P. N. Papillon

Open full text 9 citations

Abstract

Abstract Members of the ATP-dependent SWI/SNF chromatin remodeling complexes are among the most frequently mutated genes in cancer, suggesting their dysregulation plays a critical role. The synthetic lethality between SWI/SNF catalytic subunits BRM/SMARCA2 and BRG1/SMARCA4 has instigated great interest in targeting BRM. Here we have performed a critical and in-depth investigation of novel dual inhibitors (BRM011 and BRM014) of BRM and BRG1 in order to validate their utility as chemical probes of SWI/SNF catalytic function, while obtaining insights into the therapeutic potential of SWI/SNF inhibition. In corroboration of on-target activity, we discovered compound resistant mutations through pooled screening of BRM variants in BRG1 -mut cancer cells. Strikingly, genome-wide transcriptional and chromatin profiling (ATAC-Seq) provided further evidence of pharmacological perturbation of SWI/SNF chromatin remodeling as BRM011 treatment induced specific changes in chromatin accessibility and gene expression similar to genetic depletion of BRM. Finally, these compounds have the capacity to inhibit the growth of tumor-xenografts, yielding important insights into the feasibility of developing BRM/BRG1 ATPase inhibitors for the treatment of BRG1 -mut lung cancers. Overall, our studies not only establish the feasibility of inhibiting SWI/SNF catalytic function, providing a framework for SWI/SNF therapeutic targeting, but have also yielded successful elucidation of small-molecule inhibitors that will be of importance in probing SWI/SNF function in various disease contexts.

Open-access reader

About this research paper

What this paper is about

Abstract Members of the ATP-dependent SWI/SNF chromatin remodeling complexes are among the most frequently mutated genes in cancer, suggesting their dysregulation plays a critical role. The synthetic lethality between SWI/SNF catalytic subunits BRM/SMARCA2 and BRG1/SMARCA4 has instigated great interest in targeting BRM. Here we have performed a critical and in-depth investigation of novel dual inhibitors (BRM011 and BRM014) of BRM and BRG1 in order to validate their utility as chemical probes of SWI/SNF catalytic function, while obtaining insights into the therapeutic potential of SWI/SNF inhibition. In corroboration of on-target activity, we discovered compound resistant mutations through pooled screening of BRM variants in BRG1 -mut cancer cells. Strikingly, genome-wide transcriptional and chromatin profiling (ATAC-Seq) provided further evidence of pharmacological perturbation of SWI/SNF chromatin remodeling as BRM011 treatment induced specific changes in chromatin accessibility and gene expression similar to genetic depletion of BRM. Finally, these compounds have the capacity to inhibit the growth of tumor-xenografts, yielding important insights into the feasibility of developing BRM/BRG1 ATPase inhibitors for the treatment of BRG1 -mut lung cancers. Overall, our studies not only establish the feasibility of inhibiting SWI/SNF catalytic function, providing a framework for SWI/SNF therapeutic targeting, but have also yielded successful elucidation of small-molecule inhibitors that will be of importance in probing SWI/SNF function in various disease contexts.

Why it matters

OpenAlex reports 9 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract Members of the ATP-dependent SWI/SNF chromatin remodeling complexes are among the most frequently mutated genes in cancer, suggesting their dysregulation plays a critical role. The synthetic lethality between SWI/SNF catalytic subunits BRM/SMARCA2 and BRG1/SMARCA4 has instigated great interest in targeting BRM. Here we have performed a critical and in-depth investigation of novel dual inhibitors (BRM011 and BRM014) of BRM and BRG1 in order to validate their utility as chemical probes of SWI/SNF catalytic function, while obtaining insights into the therapeutic potential of SWI/SNF inhibition. In corroboration of on-target activity, we discovered compound resistant mutations through pooled screening of BRM variants in BRG1 -mut cancer cells. Strikingly, genome-wide transcriptional and chromatin profiling (ATAC-Seq) provided further evidence of pharmacological perturbation of SWI/SNF chromatin remodeling as BRM011 treatment induced specific changes in chromatin accessibility and gene expression similar to genetic depletion of BRM. Finally, these compounds have the capacity to inhibit the growth of tumor-xenografts, yielding important insights into the feasibility of developing BRM/BRG1 ATPase inhibitors for the treatment of BRG1 -mut lung cancers. Overall, our studies not only establish the feasibility of inhibiting SWI/SNF catalytic function, providing a framework for SWI/SNF therapeutic targeting, but have also yielded successful elucidation of small-molecule inhibitors that will be of importance in probing SWI/SNF function in various disease contexts.

Key concepts: SMARCA4, SWI/SNF, Chromatin remodeling, Chromatin structure remodeling (RSC) complex, Chromatin, Cancer research, SMARCB1, Biology

Related papers

Back to paper searchBrowse research topicsOriginal source
In-Depth Characterization and Validation in BRG1 -Mutant Lung Cancers Define Novel Catalytic Inhibitors of SWI/SNF Chromatin Remodeling — Research Paper | ScholarLens