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Isolation of Atrial Myocytes from Adult Mice
Published on: July 25, 2019
Heat shock proteins in atrial fibrillation: from bench to bedside
Shujie Zhang1, Yujie Wang2, Lujing Nie1
1The First Affiliated Hospital of Shandong Second Medical University, Weifang, China.
Insights
Heat shock proteins (HSPs) protect against atrial fibrillation (AF) by preventing cellular damage and remodeling. Targeting HSPs offers a promising strategy for developing effective, etiology-specific AF treatments and biomarkers.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Atrial fibrillation (AF) is a common, progressive arrhythmia linked to heart failure and stroke.
- Current AF treatments are primarily symptomatic with limited preventive efficacy.
- Atrial electrical and structural remodeling are key pathological mechanisms in AF.
Purpose of the Study:
- To review the protective mechanisms of heat shock proteins (HSPs) in atrial fibrillation.
- To explore HSPs as potential therapeutic targets and biomarkers for AF.
- To guide the development of etiology-specific AF therapies.
Main Methods:
- Literature review focusing on the role of heat shock proteins in cardiovascular diseases.
- Analysis of studies investigating HSPs' effects on cellular stress, inflammation, apoptosis, and proteostasis.
- Examination of evidence linking HSPs to AF pathogenesis and progression.
Main Results:
- HSPs act as molecular chaperones, protecting cells from stressors like oxidative stress and inflammation.
- HSPs mitigate cardiomyocyte remodeling, a critical factor in AF development.
- HSPs prevent toxic protein aggregation, maintaining proteostasis.
- Studies suggest HSPs inhibit AF onset and progression, acting as potential biomarkers.
Conclusions:
- Heat shock proteins play a crucial protective role against atrial fibrillation.
- HSPs represent a promising therapeutic target for developing novel AF treatments.
- HSPs may serve as valuable biomarkers for AF staging and predicting treatment outcomes.
Abstract:
Atrial fibrillation (AF) is the most common age-related arrhythmia in clinic, affecting millions of people around the world, and is closely related to heart failure, ischemic stroke and other diseases. In addition, AF is progressive in nature and represents a significant global health burden. However, the current treatment plans are mainly symptomatic, the efficacy in preventing atrial fibrillation is limited. Hence, there is a pressing need for etiology-specific AF treatments. It is widely acknowledged that the atrial electrical and structural remodeling constitutes the pathological basis of atrial fibrillation. Evidence indicates that heat shock proteins (HSPs) could have a protective effect against AF. HSPs are a diverse family of molecular chaperones that safeguard cells against various stressors. They play a crucial role in mitigating oxidative stress, inflammation, and apoptosis, thereby helping to prevent structural and electrical remodeling in cardiomyocytes. Moreover, HSPs safeguard proteostasis via prevention of toxic protein aggregation by binding to (partially) unfolded proteins. As pivotal inhibitors of AF onset and progression, HSPs represent both a promising therapeutic target and potential biomarkers for staging AF and predicting post-treatment recurrence, as evidenced by recent studies. In this review, we explore the mechanisms of HSP in AF to pave the way for the development of targeted therapies for this prevalent arrhythmia disease.
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