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Published on: February 27, 2020
CRISPR screen identifies the NCOR/HDAC3 complex as a major suppressor of differentiation in rhabdomyosarcoma
Michael P Phelps1, Jenna N Bailey1, Terra Vleeshouwer-Neumann1
1Department of Pathology, University of Washington, Seattle, WA 98195.
Abstract:
Dysregulated gene expression resulting from abnormal epigenetic alterations including histone acetylation and deacetylation has been demonstrated to play an important role in driving tumor growth and progression. However, the mechanisms by which specific histone deacetylases (HDACs) regulate differentiation in solid tumors remains unclear. Using pediatric rhabdomyosarcoma (RMS) as a paradigm to elucidate the mechanism blocking differentiation in solid tumors, we identified HDAC3 as a major suppressor of myogenic differentiation from a high-efficiency Clustered regularly interspaced short palindromic repeats (CRISPR)-based phenotypic screen of class I and II HDAC genes. Detailed characterization of the HDAC3-knockout phenotype in vitro and in vivo using a tamoxifen-inducible CRISPR targeting strategy demonstrated that HDAC3 deacetylase activity and the formation of a functional complex with nuclear receptor corepressors (NCORs) were critical in restricting differentiation in RMS. The NCOR/HDAC3 complex specifically functions by blocking myoblast determination protein 1 (MYOD1)-mediated activation of myogenic differentiation. Interestingly, there was also a transient up-regulation of growth-promoting genes upon initial HDAC3 targeting, revealing a unique cancer-specific response to the forced transition from a neoplastic state to terminal differentiation. Our study applied modifications of CRISPR/CRISPR-associated endonuclease 9 (Cas9) technology to interrogate the function of essential cancer genes and pathways and has provided insights into cancer cell adaptation in response to altered differentiation status. Because current pan-HDAC inhibitors have shown disappointing results in clinical trials of solid tumors, therapeutic targets specific to HDAC3 function represent a promising option for differentiation therapy in malignant tumors with dysregulated HDAC3 activity.
Insights
Histone deacetylase 3 (HDAC3) suppresses muscle cell differentiation in rhabdomyosarcoma. Targeting HDAC3 may offer a new approach for solid tumor differentiation therapy.
Area of Science:
- Epigenetics
- Cancer Biology
- Molecular Oncology
Background:
- Epigenetic alterations, including histone acetylation and deacetylation, drive tumor growth.
- The precise role of specific histone deacetylases (HDACs) in solid tumor differentiation is not fully understood.
Purpose of the Study:
- To investigate the mechanisms by which HDACs regulate differentiation in solid tumors.
- To identify specific HDACs involved in blocking differentiation in pediatric rhabdomyosarcoma (RMS).
Main Methods:
- Utilized a high-efficiency Clustered Regularly Interspaced Short Palindromic Repeats (CRISPR)-based screen to identify key HDAC genes.
- Employed a tamoxifen-inducible CRISPR targeting strategy for in vitro and in vivo characterization of HDAC3.
- Investigated the interaction of HDAC3 with nuclear receptor corepressors (NCORs).
Main Results:
- Identified HDAC3 as a critical suppressor of myogenic differentiation in RMS.
- Demonstrated that HDAC3 deacetylase activity and its complex with NCORs block MYOD1-mediated differentiation.
- Observed a transient upregulation of growth-promoting genes upon HDAC3 targeting, indicating a cancer-specific response.
Conclusions:
- HDAC3 and its complex with NCORs are key regulators that inhibit differentiation in RMS.
- Targeting HDAC3 specifically offers a promising therapeutic strategy for differentiation therapy in solid tumors, potentially overcoming limitations of current pan-HDAC inhibitors.
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