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Targeting the Apelin-APJ Axis: A Promising Strategy to Mitigate Anthracycline-Induced Cardiotoxicity
1Department of Research and Development, Dr. Vishwanath Karad MIT World Peace University, Pune, Maharashtra, India. varsha.desai@mitwpu.edu.in.
Insights
The apelin-APJ signaling axis shows promise for protecting the heart from anthracycline-induced cardiotoxicity. Targeting this pathway may offer a more effective cardioprotective strategy than current treatments.
Area of Science:
- Cardiovascular Research
- Pharmacology
- Molecular Medicine
Background:
- Anthracycline chemotherapy can cause long-term cardiotoxicity, leading to heart failure.
- Current cardioprotective drugs have limited efficacy against the complex mechanisms of this toxicity.
- Oxidative stress and mitochondrial dysfunction are key contributors to anthracycline-induced cardiotoxicity.
Purpose of the Study:
- To review the potential of the apelin-APJ signaling axis as a novel therapeutic target for anthracycline-induced cardiotoxicity.
- To highlight the cardioprotective mechanisms of apelin-APJ signaling.
- To explore the therapeutic promise of apelin-APJ agonists in mitigating chemotherapy-related cardiac damage.
Main Methods:
- Literature review of studies on apelin-APJ signaling in cardiovascular disease.
- Analysis of preclinical and clinical data on apelin analogues.
- Examination of signaling pathways implicated in anthracycline cardiotoxicity and their relation to apelin-APJ.
Main Results:
- The apelin-APJ axis exerts beneficial effects including antioxidant, anti-apoptotic, and anti-inflammatory actions.
- These effects are mediated via key pathways like PI3K/Akt and AMPK, which are impaired in cardiotoxicity.
- Modified apelin analogues demonstrate enhanced stability and efficacy in cardiovascular models.
Conclusions:
- Pharmacological activation of the apelin-APJ axis presents a promising, mechanism-based strategy against anthracycline cardiotoxicity.
- Apelin-APJ agonists may offer superior cardioprotection compared to conventional therapies.
- Further research into apelin-APJ targeted therapies is warranted for preventing chemotherapy-induced heart failure.
Abstract:
Anthracycline-induced cardiotoxicity remains a major clinical challenge, often progressing to heart failure years after therapy. Conventional cardioprotective agents, including angiotensin-converting enzyme inhibitors, angiotensin receptor blockers, and beta-blockers, are widely used to preserve cardiac function; however, their effectiveness is limited by their inability to comprehensively address the complex, multifactorial pathophysiology of anthracycline-induced cardiotoxicity. This underscores the critical need for more effective and mechanism-based cardioprotective strategies that directly target the underlying molecular mechanisms, particularly oxidative stress and mitochondrial dysfunction. In recent years, the apelin-APJ signalling axis has attracted increasing attention as a potential therapeutic target in cardiovascular diseases owing to its multifaceted biological actions, including positive inotropy, vasodilation, anti-inflammatory, anti-fibrotic, anti-apoptotic, antioxidant, and pro-angiogenic effects. These pleiotropic actions are primarily mediated through the activation of key signalling pathways such as phosphoinositide 3-kinase/protein kinase B, extracellular signal-regulated kinases 1/2, and AMP-activated protein kinase. Given that these signalling cascades are disrupted during anthracycline-induced cardiotoxicity, pharmacological activation of the apelin-APJ axis may represent a promising avenue to mitigate anthracycline-associated cardiac injury with greater efficacy than conventional therapies. While native apelin isoforms (apelin-12, -13, -17, and [Pyr¹]apelin-13) are limited by their short half-lives, chemically modified analogues such as LIT01-196 and apelin-17(A2) exhibit enhanced stability and efficacy, with demonstrated cardioprotective effects in preclinical cardiovascular models and patients with chronic heart failure. However, their therapeutic potential in anthracycline-induced cardiotoxicity remains largely unexplored. This review highlights its promise as a novel cardioprotective strategy for mitigating anthracycline-induced cardiotoxicity.
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