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Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
Histone Deacetylase Inhibitors Prolong Cardiac Repolarization through Transcriptional Mechanisms
Stan Spence1, Mark Deurinck2, Haisong Ju3
1*Preclinical Safety, Novartis Institutes of Biomedical Research, 100 Technology Square, Cambridge, MA 02139 stanley.spence@novartis.com.
Abstract:
Histone deacetylase (HDAC) inhibitors are an emerging class of anticancer agents that modify gene expression by altering the acetylation status of lysine residues of histone proteins, thereby inducing transcription, cell cycle arrest, differentiation, and cell death or apoptosis of cancer cells. In the clinical setting, treatment with HDAC inhibitors has been associated with delayed cardiac repolarization and in rare instances a lethal ventricular tachyarrhythmia known as torsades de pointes. The mechanism(s) of HDAC inhibitor-induced effects on cardiac repolarization is unknown. We demonstrate that administration of structurally diverse HDAC inhibitors to dogs causes delayed but persistent increases in the heart rate corrected QT interval (QTc), an in vivo measure of cardiac repolarization, at timepoints far removed from the Tmax for parent drug and metabolites. Transcriptional profiling of ventricular myocardium from dogs treated with various HDAC inhibitors demonstrated effects on genes involved in protein trafficking, scaffolding and insertion of various ion channels into the cell membrane as well as genes for specific ion channel subunits involved in cardiac repolarization. Extensive in vitro ion channel profiling of various structural classes of HDAC inhibitors (and their major metabolites) by binding and acute patch clamp assays failed to show any consistent correlations with direct ion channel blockade. Drug-induced rescue of an intracellular trafficking-deficient mutant potassium ion channel, hERG (G601S), and decreased maturation (glycosylation) of wild-type hERG expressed by CHO cells in vitro correlated with prolongation of QTc intervals observed in vivo The results suggest that HDAC inhibitor-induced prolongation of cardiac repolarization may be mediated in part by transcriptional changes of genes required for ion channel trafficking and localization to the sarcolemma. These data have broad implications for the development of these drug classes and suggest that the optimal time to assess potentially transcriptionally mediated physiologic effects will be delayed relative to an epigenetic drug's Tmax/Cmax.
Insights
Histone deacetylase (HDAC) inhibitors, used in cancer therapy, can delay cardiac repolarization. This study suggests HDAC inhibitors may affect heart rhythm by altering genes involved in ion channel function, not direct channel blockade.
Area of Science:
- Pharmacology
- Cardiology
- Molecular Biology
Background:
- Histone deacetylase (HDAC) inhibitors are anticancer drugs that affect gene expression.
- Clinical use of HDAC inhibitors is linked to cardiac repolarization delays and torsades de pointes.
- The mechanism behind HDAC inhibitor cardiotoxicity remains unclear.
Purpose of the Study:
- To investigate the mechanism of HDAC inhibitor-induced cardiac repolarization abnormalities.
- To determine if HDAC inhibitors directly affect cardiac ion channels or alter gene expression related to them.
Main Methods:
- Administration of diverse HDAC inhibitors to dogs to measure cardiac repolarization (QTc interval).
- Transcriptional profiling of ventricular myocardium to identify affected genes.
- In vitro ion channel assays (binding and patch clamp) and cellular studies using hERG channel mutants and wild-type variants.
Main Results:
- HDAC inhibitors caused delayed but persistent QTc interval prolongation in dogs.
- Transcriptional profiling revealed alterations in genes related to ion channel trafficking and localization.
- In vitro studies showed HDAC inhibitors rescued trafficking-deficient hERG mutants and affected wild-type hERG maturation, correlating with QTc prolongation.
- Direct ion channel blockade by HDAC inhibitors showed no consistent correlation with QTc prolongation.
Conclusions:
- HDAC inhibitor-induced cardiac repolarization prolongation may be mediated by transcriptional changes affecting ion channel trafficking and sarcolemmal localization.
- These findings suggest delayed assessment of physiological effects relative to Tmax/Cmax for epigenetic drugs.
- The study provides insights into the cardiotoxicity mechanisms of HDAC inhibitors, crucial for drug development.
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