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Published on: April 8, 2013
ALPK2 prevents cardiac diastolic dysfunction in heart failure with preserved ejection fraction
Tatsuya Yoshida1, Satoya Yoshida1, Kohei Inukai1
1Department of Cardiology, Nagoya University School of Medicine, Nagoya, Japan.
Abstract:
Protein phosphorylation, controlled by protein kinases, is central to regulating various pathophysiological processes, including cardiac systolic function. The dysregulation of protein kinase activity plays a significant role in the pathogenesis of cardiac systolic dysfunction. While cardiac contraction mechanisms are well documented, the mechanisms underlying cardiac diastole remain elusive. This gap persists owing to the historical focus on systolic dysfunction in heart failure research. Recently, heart failure with preserved ejection fraction (HFpEF), an age-related disease characterized by cardiac diastolic dysfunction, has emerged as a major public health concern. However, its underlying mechanism remains unclear. In this study, we investigated cardiac protein kinases by analyzing the gene expression of 518 protein kinases in human tissues. We identified alpha-kinase 2 (ALPK2) as a novel cardiac-specific atypical kinase and generated tamoxifen-inducible, cardiomyocyte-specific Alpk2-knockout mice and Alpk2-overexpressing mice. Alpk2 deficiency did not affect cardiac systolic dysfunction in the myocardial infarction model or the pressure-overload-induced heart failure model. Notably, cardiomyocyte-specific Alpk2 deficiency exacerbated cardiac diastolic dysfunction induced by aging and in the HFpEF model. Conversely, Alpk2 overexpression increased the phosphorylation of tropomyosin 1, a major regulator that binds myosin to actin, and mitigated cardiac stiffness in HFpEF. This study provides novel evidence that ALPK2 represents a potential therapeutic target for cardiac diastolic dysfunction in HFpEF and age-related cardiac impairments.
Insights
Alpha-kinase 2 (ALPK2) is a novel cardiac-specific kinase. ALPK2 deficiency worsens diastolic dysfunction in aging and heart failure with preserved ejection fraction (HFpEF), suggesting it is a therapeutic target.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Protein phosphorylation regulates cardiac function, but diastolic mechanisms are poorly understood.
- Heart failure with preserved ejection fraction (HFpEF) involves cardiac diastolic dysfunction, with unclear underlying mechanisms.
- Cardiac protein kinases are key regulators, yet their specific roles in diastole require elucidation.
Purpose of the Study:
- To investigate the role of cardiac protein kinases in cardiac function, particularly diastolic function.
- To identify novel cardiac-specific kinases involved in heart failure with preserved ejection fraction (HFpEF).
- To evaluate alpha-kinase 2 (ALPK2) as a potential therapeutic target for diastolic dysfunction.
Main Methods:
- Analyzed gene expression of 518 protein kinases in human tissues.
- Generated cardiomyocyte-specific Alpk2-knockout and Alpk2-overexpressing mouse models.
- Assessed cardiac function in various disease models, including aging, myocardial infarction, pressure overload, and HFpEF.
Main Results:
- Identified alpha-kinase 2 (ALPK2) as a novel cardiac-specific atypical kinase.
- Alpk2 deficiency exacerbated age- and HFpEF-induced cardiac diastolic dysfunction.
- Alpk2 overexpression mitigated cardiac stiffness and increased tropomyosin 1 phosphorylation in HFpEF.
Conclusions:
- ALPK2 plays a critical role in regulating cardiac diastolic function.
- ALPK2 deficiency exacerbates cardiac diastolic dysfunction in aging and HFpEF.
- ALPK2 is a promising therapeutic target for treating cardiac diastolic dysfunction and age-related cardiac impairments.
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