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Author Spotlight: Developing Tools to Tune the Activity of Tyrosine Phosphatases
Published on: September 6, 2024
Function and regulation of phosphatase 1 in healthy and diseased heart
Erik Klapproth1, Susanne Kämmerer1, Ali El-Armouche1
1Institute of Pharmacology and Toxicology, Faculty of Medicine Carl Gustav Carus, Technische Universität Dresden, Dresden, Germany.
Insights
Dysregulation of protein phosphatase 1 (PP1) impacts cardiac function, contributing to heart failure and atrial fibrillation. Targeting PP1 and its regulators offers new therapeutic strategies for heart disease.
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
- Biochemistry
Background:
- Cardiac excitation and contractility are precisely regulated by reversible protein phosphorylation.
- Serine/threonine phosphatases, particularly protein phosphatase 1 (PP1), are crucial for dephosphorylating cardiac proteins.
- Dysregulation of these phosphatases contributes to heart failure and atrial fibrillation.
Purpose of the Study:
- To review the genetic and holoenzymatic structure of PP1.
- To elucidate the role of PP1 in cardiac physiology and pathophysiology.
- To highlight PP1 regulatory proteins as potential therapeutic targets for heart disease.
Main Methods:
- Review of existing literature on PP1 structure, function, and regulation in the heart.
- Analysis of PP1 interactions with cardiac ion channels, calcium-handling proteins, and contractile proteins.
- Examination of genetic models and potential pharmacological interventions.
Main Results:
- PP1 significantly impacts cardiac excitation-contraction coupling through interactions with key proteins like Cav1.2, RyR2, SERCA, and contractile elements.
- PP1 and its regulatory proteins (inhibitor-1, inhibitor-2, HSP20) are dysregulated in cardiac disease.
- Alterations in protein phosphorylation status of Ca2+ handling proteins are linked to phosphatase dysregulation.
Conclusions:
- PP1 is a central regulator of cardiac function and a key player in heart failure and atrial fibrillation.
- PP1 regulatory proteins are critical in disease manifestation and represent viable therapeutic targets.
- Further research into PP1 and its modulators may yield novel treatment strategies for cardiovascular diseases.
Abstract:
Reversible phosphorylation of ion channels and calcium-handling proteins provides precise post-translational regulation of cardiac excitation and contractility. Serine/threonine phosphatases govern dephosphorylation of the majority of cardiac proteins. Accordingly, dysfunction of this regulation contributes to the development and progression of heart failure and atrial fibrillation. On the molecular level, these changes include alterations in the expression level and phosphorylation status of Ca2+ handling and excitation-contraction coupling proteins provoked by dysregulation of phosphatases. The serine/threonine protein phosphatase PP1 is one a major player in the regulation of cardiac excitation-contraction coupling. PP1 essentially impacts on cardiac physiology and pathophysiology via interactions with the cardiac ion channels Cav1.2, NKA, NCX and KCNQ1, sarcoplasmic reticulum-bound Ca2+ handling proteins such as RyR2, SERCA and PLB as well as the contractile proteins MLC2, TnI and MyBP-C. PP1 itself but also PP1-regulatory proteins like inhibitor-1, inhibitor-2 and heat-shock protein 20 are dysregulated in cardiac disease. Therefore, they represent interesting targets to gain more insights in heart pathophysiology and to identify new treatment strategies for patients with heart failure or atrial fibrillation. We describe the genetic and holoenzymatic structure of PP1 and review its role in the heart and cardiac disease. Finally, we highlight the importance of the PP1 regulatory proteins for disease manifestation, provide an overview of genetic models to study the role of PP1 for the development of heart failure and atrial fibrillation and discuss possibilities of pharmacological interventions.
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