Osimertinib-induced cardiotoxicity is driven by HDAC-dependent epigenetic repression and rescued by vorinostat
Angelica Toro Cora1, Arvind Singh Bhati1, Allen Sam Titus1
1Department of Cellular Biology & Anatomy, LSU Health Shreveport, Shreveport, LA, USA.
Abstract:
Osimertinib, a third-generation EGFR tyrosine kinase inhibitor (TKI), has improved outcomes in non-small cell lung cancer (NSCLC) patients harboring the T790M mutation; however, emerging clinical evidence indicates a risk of cardiotoxicity. Here, we establish the first in vivo preclinical model of osimertinib-induced cardiotoxicity using transverse aortic constriction (TAC) in mice. Osimertinib treatment resulted in cardiac dysfunction, impaired hypertrophic remodeling, and increased markers of heart failure and fibrosis. Unbiased transcriptomic profiling revealed a myocardial stress response characterized by activation of p53-associated cell death pathways, mitochondrial dysfunction, and negative enrichment of histone acetyltransferase (HAT) complexes, indicating epigenetic repression. Mechanistically, osimertinib-treated hearts exhibited increased expression of multiple histone deacetylase (HDAC) isoforms, reduced acetylation of histones, and enhanced cardiomyocyte apoptosis via Bax/caspase-mediated pathways. There was a minimal, transient effect on inflammation, supporting a type I, cell-autonomous cardiotoxic mechanism. Consistent with this, in vitro and in vivo analyses demonstrated suppression of prosurvival ERK/AKT signaling, mitochondrial dysfunction, and activation of intrinsic apoptotic pathways. Given the central role of HDAC activation, we tested whether pharmacologic HDAC inhibition could mitigate osimertinib-induced cardiotoxicity. Treatment with the FDA-approved HDAC inhibitor vorinostat (SAHA) restored histone acetylation, attenuated p53 activation, reduced cardiomyocyte death, and rescued cardiac function in osimertinib-treated mice. Translational studies in human NSCLC-derived PC9 cells further demonstrated that SAHA enhances osimertinib antitumor efficacy while alleviating cardiotoxicity. Collectively, these findings define HDAC-dependent epigenetic repression as a key mechanism underlying osimertinib-induced cardiotoxicity and identify HDAC inhibition as a therapeutically actionable strategy to improve both cardiac safety and cancer treatment efficacy.
Insights
Osimertinib causes cardiotoxicity by repressing histone acetylation. Inhibiting histone deacetylases (HDACs) with vorinostat mitigates this toxicity and enhances cancer treatment efficacy.
Area of Science:
- Cardiology
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Osimertinib improves non-small cell lung cancer (NSCLC) outcomes but carries a risk of cardiotoxicity.
- Preclinical models are needed to understand osimertinib-induced cardiotoxicity.
- Emerging evidence suggests a link between EGFR-TKI therapy and cardiac adverse events.
Purpose of the Study:
- To establish and characterize an in vivo preclinical model of osimertinib-induced cardiotoxicity.
- To elucidate the molecular mechanisms underlying this cardiotoxicity, focusing on epigenetic regulation.
- To investigate HDAC inhibition as a potential therapeutic strategy to mitigate cardiotoxicity and improve treatment efficacy.
Main Methods:
- Established a transverse aortic constriction (TAC) mouse model for osimertinib-induced cardiotoxicity.
- Performed unbiased transcriptomic profiling to identify molecular pathways involved.
- Utilized in vitro and in vivo assays to assess cardiomyocyte apoptosis, signaling pathways, and mitochondrial function.
- Investigated the effects of the HDAC inhibitor vorinostat (SAHA) on cardiac function and cancer cell efficacy.
Main Results:
- Osimertinib treatment induced cardiac dysfunction, fibrosis, and heart failure markers in mice.
- Transcriptomic analysis revealed p53 pathway activation, mitochondrial dysfunction, and epigenetic repression via reduced histone acetylation.
- Osimertinib increased histone deacetylase (HDAC) expression and promoted cardiomyocyte apoptosis.
- Vorinostat (SAHA) treatment restored histone acetylation, reduced cardiomyocyte death, and rescued cardiac function.
- SAHA enhanced osimertinib's antitumor efficacy and alleviated cardiotoxicity in human NSCLC cells.
Conclusions:
- HDAC-dependent epigenetic repression is a key mechanism in osimertinib-induced cardiotoxicity.
- HDAC inhibition represents a promising therapeutic strategy to improve cardiac safety in NSCLC patients treated with osimertinib.
- Targeting epigenetic modifications offers a dual benefit of enhancing cancer treatment efficacy and reducing cardiotoxicity.
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