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Prevention of Atrial Fibrillation: Putting Proteostasis Derailment Back on Track
Preetam Kishore1, Amelie C T Collinet1, Bianca J J M Brundel1
1Physiology, Amsterdam UMC, Vrije Universiteit, Amsterdam Cardiovascular Sciences, Heart Failure and Arrhythmias, 1081 HZ Amsterdam, The Netherlands.
Abstract:
Despite the many attempts to treat atrial fibrillation (AF), the most common cardiac tachyarrhythmia in the Western world, the treatment efficacy of AF is still suboptimal. A plausible reason for the suboptimal efficacy is that the current treatments are not directed at the underlying molecular mechanisms that drive AF. Recent discoveries revealed that the derailment of specific molecular proteostasis pathways drive electrical conduction disorders, contractile dysfunction and AF. The degree of this so-called 'electropathology' corresponds to the response to anti-AF treatment. Hence, to develop effective therapies to prevent AF, understanding the molecular mechanisms is of key importance. In this review, we highlight the key modulators of proteostasis derailment and describe the mechanisms that explain how they affect electrical and contractile function in atrial cardiomyocytes and AF. The key modulators of proteostasis derailment include (1) exhaustion of cardioprotective heat shock proteins (HSPs), (2) excessive endoplasmic reticulum (ER) stress and downstream autophagic protein degradation, (3) histone deacetylase 6 (HDAC6)-induced microtubule disruption, (4) activation of DNA damage-PARP1 activation and NAD+ axis and (5) mitochondrial dysfunction. Furthermore, we discuss druggable targets within these pathways that are involved in the prevention of proteostasis derailment, as well as the targets that aid in the recovery from AF. Finally, we will elaborate on the most favorable druggable targets for (future) testing in patients with AF, as well as drugs with potential benefits for AF recovery.
Insights
Understanding molecular mechanisms of atrial fibrillation (AF) is key for effective treatment. Proteostasis pathway derailment drives AF, and targeting these pathways offers new therapeutic strategies for this common cardiac condition.
Area of Science:
- Cardiology
- Molecular Biology
- Proteostasis
Background:
- Atrial fibrillation (AF) is the most common cardiac arrhythmia, yet current treatments show suboptimal efficacy.
- Suboptimal treatment outcomes may stem from a lack of focus on the underlying molecular drivers of AF.
- Emerging evidence links the disruption of proteostasis pathways to AF pathophysiology.
Purpose of the Study:
- To review the molecular mechanisms driving AF, focusing on proteostasis pathway derailment.
- To elucidate how key proteostasis modulators impact atrial cardiomyocyte function and AF development.
- To identify druggable targets for AF prevention and recovery.
Main Methods:
- Review of scientific literature on proteostasis and AF.
- Analysis of molecular pathways implicated in cardiac electropathology.
- Identification and discussion of therapeutic targets within these pathways.
Main Results:
- Proteostasis derailment, involving heat shock proteins, ER stress, autophagy, HDAC6, DNA damage response, and mitochondrial dysfunction, contributes to AF.
- The extent of this 'electropathology' correlates with treatment response.
- Several druggable targets within these pathways show potential for AF prevention and recovery.
Conclusions:
- Targeting molecular mechanisms of proteostasis derailment is crucial for developing effective AF therapies.
- Identifying and validating specific druggable targets could lead to improved patient outcomes for AF.
- Further investigation into these targets is warranted for clinical application in AF patients.
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