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Published on: May 26, 2023
Prevention of PKG1α oxidation augments cardioprotection in the stressed heart
Insights
Oxidative stress oxidizes cGMP-dependent protein kinase-1α (PKG1α) in heart disease, impairing its protective function. Reducing PKG1α oxidation improved heart adaptation to stress, suggesting therapeutic potential.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Oxidative Stress Research
Background:
- The cyclic GMP-dependent protein kinase-1α (PKG1α) pathway is crucial for cardiovascular homeostasis.
- Oxidative stress is a known factor in heart disease progression and can affect signaling pathways.
- PKG1α can undergo oxidation, but its role in myocardial regulation under disease conditions was unclear.
Purpose of the Study:
- To investigate the impact of PKG1α oxidation on myocardial regulation in heart disease.
- To determine if PKG1α oxidation contributes to adverse cardiac remodeling.
- To explore the potential of maintaining PKG1α in its reduced form for cardioprotection.
Main Methods:
- Assessed PKG1α oxidation in human heart disease patients and rodent models.
- Utilized a redox-dead PKG1α mutant (PKG1α(C42S)) to study the effects of oxidation.
- Evaluated cardiac function, histology, and molecular markers under stress conditions.
- Examined the subcellular localization of oxidized versus reduced PKG1α.
- Investigated the interaction of PKG1α with TRPC6 channels.
Main Results:
- PKG1α was found to be oxidized in patients and models of heart disease.
- Myocardial PKG1α oxidation correlated with adverse cardiac remodeling following pressure overload or Gq agonist stimulation.
- Hearts expressing PKG1α(C42S) showed better adaptation to stress compared to controls.
- Oxidized PKG1α localized to the cytosol, while reduced PKG1α(C42S) localized to the plasma membrane.
- Reduced PKG1α enhanced TRPC6 suppression, leading to improved antihypertrophic signaling.
Conclusions:
- Myocardial PKG1α oxidation hinders beneficial responses to pathological stress.
- PKG1α oxidation may explain variable clinical responses to PKG1α pathway activation in heart disease.
- Maintaining PKG1α in its reduced state could optimize its cardioprotective effects.
Abstract:
The cGMP-dependent protein kinase-1α (PKG1α) transduces NO and natriuretic peptide signaling; therefore, PKG1α activation can benefit the failing heart. Disease modifiers such as oxidative stress may depress the efficacy of PKG1α pathway activation and underlie variable clinical results. PKG1α can also be directly oxidized, forming a disulfide bond between homodimer subunits at cysteine 42 to enhance oxidant-stimulated vasorelaxation; however, the impact of PKG1α oxidation on myocardial regulation is unknown. Here, we demonstrated that PKG1α is oxidized in both patients with heart disease and in rodent disease models. Moreover, this oxidation contributed to adverse heart remodeling following sustained pressure overload or Gq agonist stimulation. Compared with control hearts and myocytes, those expressing a redox-dead protein (PKG1α(C42S)) better adapted to cardiac stresses at functional, histological, and molecular levels. Redox-dependent changes in PKG1α altered intracellular translocation, with the activated, oxidized form solely located in the cytosol, whereas reduced PKG1α(C42S) translocated to and remained at the outer plasma membrane. This altered PKG1α localization enhanced suppression of transient receptor potential channel 6 (TRPC6), thereby potentiating antihypertrophic signaling. Together, these results demonstrate that myocardial PKG1α oxidation prevents a beneficial response to pathological stress, may explain variable responses to PKG1α pathway stimulation in heart disease, and indicate that maintaining PKG1α in its reduced form may optimize its intrinsic cardioprotective properties.
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