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Updated: May 13, 2026

Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
HDAC inhibitors induce tumor-cell-selective pro-apoptotic transcriptional responses
J E Bolden1, W Shi, K Jankowski
1Cancer Therapeutics Program, Gene Regulation Laboratory, The Peter MacCallum Cancer Centre, St Andrews Place, East Melbourne 3002, Victoria, Australia.
Abstract:
The identification of recurrent somatic mutations in genes encoding epigenetic enzymes has provided a strong rationale for the development of compounds that target the epigenome for the treatment of cancer. This notion is supported by biochemical studies demonstrating aberrant recruitment of epigenetic enzymes such as histone deacetylases (HDACs) and histone methyltransferases to promoter regions through association with oncogenic fusion proteins such as PML-RARα and AML1-ETO. HDAC inhibitors (HDACi) are potent inducers of tumor cell apoptosis; however, it remains unclear why tumor cells are more sensitive to HDACi-induced cell death than normal cells. Herein, we assessed the biological and molecular responses of isogenic normal and transformed cells to the FDA-approved HDACi vorinostat and romidepsin. Both HDACi selectively killed cells of diverse tissue origin that had been transformed through the serial introduction of different oncogenes. Time-course microarray expression profiling revealed that normal and transformed cells transcriptionally responded to vorinostat treatment. Over 4200 genes responded differently to vorinostat in normal and transformed cells and gene ontology and pathway analyses identified a tumor-cell-selective pro-apoptotic gene-expression signature that consisted of BCL2 family genes. In particular, HDACi induced tumor-cell-selective upregulation of the pro-apoptotic gene BMF and downregulation of the pro-survival gene BCL2A1 encoding BFL-1. Maintenance of BFL-1 levels in transformed cells through forced expression conferred vorinostat resistance, indicating that specific and selective engagement of the intrinsic apoptotic pathway underlies the tumor-cell-selective apoptotic activities of these agents. The ability of HDACi to affect the growth and survival of tumor cells whilst leaving normal cells relatively unharmed is fundamental to their successful clinical application. This study provides new insight into the transcriptional effects of HDACi in human donor-matched normal and transformed cells, and implicates specific molecules and pathways in the tumor-selective cytotoxic activity of these compounds.
Insights
Histone deacetylase inhibitors (HDACi) selectively kill cancer cells by altering gene expression, specifically upregulating pro-apoptotic genes like BMF and downregulating pro-survival genes such as BCL2A1. This targeted apoptosis offers a promising cancer treatment strategy.
Area of Science:
- Cancer Biology
- Epigenetics
- Molecular Pharmacology
Background:
- Recurrent mutations in epigenetic enzymes support targeting the epigenome for cancer treatment.
- Histone deacetylase inhibitors (HDACi) induce tumor cell apoptosis, but tumor selectivity is not fully understood.
Purpose of the Study:
- To investigate the biological and molecular responses of normal and transformed cells to HDAC inhibitors.
- To elucidate the mechanisms underlying tumor-cell-selective apoptosis induced by HDAC inhibitors.
Main Methods:
- Utilized isogenic normal and transformed cell lines treated with FDA-approved HDAC inhibitors (vorinostat, romidepsin).
- Performed time-course microarray expression profiling to analyze transcriptional responses.
- Conducted gene ontology and pathway analyses to identify key molecular signatures.
Main Results:
- HDAC inhibitors selectively killed transformed cells across diverse tissue origins.
- Vorinostat treatment induced distinct transcriptional responses in normal versus transformed cells.
- Identified a tumor-cell-selective pro-apoptotic gene-expression signature involving BCL2 family genes, including BMF upregulation and BCL2A1 (BFL-1) downregulation.
Conclusions:
- The intrinsic apoptotic pathway, modulated by specific BCL2 family gene expression changes, underlies HDACi's tumor-selective cytotoxicity.
- HDAC inhibitors demonstrate potential for cancer therapy by selectively inducing apoptosis in tumor cells while sparing normal cells.
- This study provides critical insights into the transcriptional effects of HDAC inhibitors, highlighting pathways involved in their tumor-selective action.
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