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Published on: August 6, 2020
Histone Deacetylase 6 Inhibitor JS28 Prevents Pathological Gene Expression in Cardiac Myocytes
Vivien Ngo1, Bernd K Fleischmann2, Manfred Jung3
1Institute of Experimental and Clinical Pharmacology and Toxicology, Faculty of Medicine University of Freiburg Germany.
Insights
The histone deacetylase 6 (HDAC6) inhibitor JS28 effectively prevents pathological gene expression in cardiac cells with minimal impact on normal gene function, offering a promising heart failure treatment strategy.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Drug Discovery
Background:
- Epigenetic modulators are potential therapeutic targets for heart failure.
- Adverse cardiac remodeling in heart failure involves pathological gene expression.
- Histone deacetylase 6 (HDAC6) is a key epigenetic enzyme.
Purpose of the Study:
- To evaluate four epigenetic drugs, including HDAC6 inhibitor JS28, for preventing endothelin-1 induced pathological gene expression in cardiac myocytes.
- To analyze the chromatin binding profiles of the targeted epigenetic regulators.
Main Methods:
- Cardiac myocytes were differentiated and treated with endothelin-1 to induce pathological gene expression.
- The effects of bromosporine (pan-bromodomain inhibitor), JQ1 (BET inhibitor), suberoylanilide hydroxamic acid (HDAC inhibitor), and JS28 (HDAC6 inhibitor) were assessed.
- Genome-wide chromatin binding profiles of HDAC6 and BRD4 were analyzed.
Main Results:
- All four epigenetic inhibitors partially prevented endothelin-1 induced pathological gene expression.
- JS28 showed the least adverse effects on physiological gene expression compared to other inhibitors.
- HDAC6 preferentially binds to promoters of RNA processing genes, while BRD4 binds to cardiac function genes at enhancers and introns.
Conclusions:
- The HDAC6 inhibitor JS28 effectively prevents adverse gene expression changes in cardiac myocytes induced by endothelin-1.
- JS28 exhibits minimal impact on physiological gene expression, suggesting a favorable therapeutic window.
- Selective HDAC6 inhibition represents a promising strategy for heart failure treatment, warranting further in vivo and clinical investigation.
Abstract:
Background Epigenetic modulators have been proposed as promising new drug targets to treat adverse remodeling in heart failure. Here, we evaluated the potential of 4 epigenetic drugs, including the recently developed histone deacetylase 6 (HDAC6) inhibitor JS28, to prevent endothelin-1 induced pathological gene expression in cardiac myocytes and analyzed the chromatin binding profile of the respective inhibitor targets. Methods and Results Cardiac myocytes were differentiated and puromycin-selected from mouse embryonic stem cells and treated with endothelin-1 to induce pathological gene expression (938 differentially expressed genes, q<0.05). Dysregulation of gene expression was at least in part prevented by epigenetic inhibitors, including the pan-BRD (bromodomain-containing protein) inhibitor bromosporine (290/938 genes), the BET (bromodomain and extraterminal) inhibitor JQ1 (288/938), the broad-spectrum HDAC inhibitor suberoylanilide hydroxamic acid (227/938), and the HDAC6 inhibitor JS28 (210/938). Although the 4 compounds were similarly effective toward pathological gene expression, JS28 demonstrated the least adverse effects on physiological gene expression. Genome-wide chromatin binding profiles revealed that HDAC6 binding sites were preferentially associated with promoters of genes involved in RNA processing. In contrast, BRD4 binding was associated with genes involved in core cardiac myocyte functions, for example, myocyte contractility, and showed enrichment at enhancers and intronic regions. These distinct chromatin binding profiles of HDAC6 and BRD4 might explain the different effects of their inhibitors on pathological versus physiological gene expression. Conclusions In summary, we demonstrated, that the HDAC6 inhibitor JS28 effectively prevented the adverse effects of endothelin-1 on gene expression with minor impact on physiological gene expression in cardiac myocytes. Selective HDAC6 inhibition by JS28 appears to be a promising strategy for future evaluation in vivo and potential translation into clinical application.
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