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Updated: May 21, 2026

Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
Next generation histone deacetylase inhibitors: the answer to the search for optimized epigenetic therapies?
Florian Thaler1, Saverio Minucci
1European Institute of Oncology, Drug Discovery Unit, Department of Experimental Oncology, Via Celoria 26, 20133 Milan, Italy.
Introduction:
HDAC inhibitors have demonstrated potent anticancer activities in preclinical and clinical studies. Currently, two drugs (SAHA and romidepsin) have gained the FDA approval for the treatment of cutaneous T-cell lymphoma. Clinical efficacy of HDAC inhibitors has been observed in advanced hematological malignancies, while response in other cancers has been in most cases unpredictable and often rather limited. The search for new molecules with the potential to overcome the limitations of the first HDAC inhibitors has become a primary goal in the field of epigenetic drug discovery as well as drugs acting on other chromatin modifying enzymes.
Areas Covered:
The article shortlists seven new HDAC inhibitors that have recently entered clinical studies as representative examples of next generation drugs. The most recently published preclinical profile is reviewed, together with the first clinical data for these compounds. The article then focuses on challenges faced during the progress of first generation HDAC inhibitors and analyzes whether these new compounds are likely to provide a solution to the existing issues and needs.
Expert Opinion:
Next generation HDAC inhibitors have the 'best-in-class' potential, particularly regarding potency and in vivo exposure. However, several issues remain unresolved. For example, none of the presented compounds appears to have a significantly different selectivity profile towards various HDAC isoforms and, thus, none of them may provide a further elucidation between the toxicity seen in more advanced HDAC inhibitors and isoform selectivity. Additionally, a need for a continuous effort on target validation is seen as a necessary requirement for further progress in the field.
Insights
Next-generation histone deacetylase (HDAC) inhibitors show promise for cancer treatment, offering improved potency. However, challenges in isoform selectivity and target validation remain critical for their successful development and clinical application.
Area of Science:
- Epigenetics
- Cancer Pharmacology
- Drug Discovery
Background:
- Histone deacetylase (HDAC) inhibitors exhibit significant anticancer properties, with two approved for cutaneous T-cell lymphoma.
- Clinical efficacy is established in hematological malignancies but often limited and unpredictable in other cancers.
- Development of novel HDAC inhibitors aims to overcome limitations of earlier generations and expand therapeutic applications.
Purpose of the Study:
- To review seven next-generation HDAC inhibitors entering clinical trials.
- To analyze preclinical and early clinical data of these novel compounds.
- To assess their potential to address challenges faced by first-generation HDAC inhibitors.
Main Methods:
- Review of recent preclinical data for seven new HDAC inhibitors.
- Analysis of initial clinical trial results for these compounds.
- Comparative assessment against limitations of existing HDAC inhibitors.
Main Results:
- Next-generation HDAC inhibitors demonstrate 'best-in-class' potential in potency and in vivo exposure.
- No significant differences in isoform selectivity profiles were observed among the reviewed compounds.
- Current data do not fully elucidate the link between toxicity and HDAC isoform selectivity.
Conclusions:
- New HDAC inhibitors offer improved potency but face unresolved issues regarding isoform selectivity.
- Further research is needed to validate targets and understand the therapeutic window.
- Continuous effort in target validation is essential for advancing epigenetic drug development.
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