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Updated: Apr 3, 2026

Cardiac Response to β-Adrenergic Stimulation Determined by Pressure-Volume Loop Analysis
Published on: May 19, 2021
Interaction between phosphodiesterases in the regulation of the cardiac β-adrenergic pathway
Claire Y Zhao1, Joseph L Greenstein1, Raimond L Winslow1
1Department of Biomedical Engineering and the Institute for Computational Medicine, The Johns Hopkins University School of Medicine and Whiting School of Engineering, 3400 N Charles Street, Baltimore, MD 21218, USA.
Abstract:
In cardiac myocytes, the second messenger cAMP is synthesized within the β-adrenergic signaling pathway upon sympathetic activation. It activates Protein Kinase A (PKA) mediated phosphorylation of multiple target proteins that are functionally critical to cardiac contractility. The dynamics of cAMP are also controlled indirectly by cGMP-mediated regulation of phosphodiesterase isoenzymes (PDEs). The nature of the interactions between cGMP and the PDEs, as well as between PDE isoforms, and how these ultimately transduce the cGMP signal to regulate cAMP remains unclear. To better understand this, we have developed mechanistically detailed models of PDEs 1-4, the primary cAMP-hydrolyzing PDEs in cardiac myocytes, and integrated them into a model of the β-adrenergic signaling pathway. The PDE models are based on experimental studies performed on purified PDEs which have demonstrated that cAMP and cGMP bind competitively to the cyclic nucleotide (cN)-binding domains of PDEs 1, 2, and 3, while PDE4 regulation occurs via PKA-mediated phosphorylation. Individual PDE models reproduce experimentally measured cAMP hydrolysis rates with dose-dependent cGMP regulation. The fully integrated model replicates experimentally observed whole-cell cAMP activation-response relationships and temporal dynamics upon varying degrees of β-adrenergic stimulation in cardiac myocytes. Simulations reveal that as a result of network interactions, reduction in the level of one PDE is partially compensated for by increased activation of others. PDE2 and PDE4 exert the strongest compensatory roles among all PDEs. In addition, PDE2 competes with other PDEs to bind and hydrolyze cAMP and is a strong regulator of PDE interactions. Finally, an increasing level of cGMP gradually out-competes cAMP for the catalytic sites of PDEs 1, 2, and 3, suppresses their cAMP hydrolysis rates, and results in amplified cAMP signaling. These results provide insights into how PDEs transduce cGMP signals to regulate cAMP and how PDE interactions affect cardiac β-adrenergic response.
Insights
Understanding cyclic nucleotide phosphodiesterases (PDEs) in cardiac cells is key. This study models PDE interactions, revealing how they regulate cyclic adenosine monophosphate (cAMP) signaling and cardiac contractility.
Area of Science:
- Cardiovascular Physiology
- Molecular Signaling
- Computational Biology
Background:
- Cardiac myocytes utilize cyclic adenosine monophosphate (cAMP) as a second messenger in β-adrenergic signaling.
- Phosphodiesterase (PDE) isoenzymes regulate cAMP dynamics, influenced by cyclic guanosine monophosphate (cGMP).
- Interactions between PDEs and their regulation by cGMP remain incompletely understood.
Purpose of the Study:
- To develop detailed computational models of PDEs 1-4 in cardiac myocytes.
- To integrate these PDE models into a comprehensive β-adrenergic signaling pathway model.
- To elucidate the mechanisms of cGMP-mediated regulation of cAMP by PDEs.
Main Methods:
- Mechanistically detailed computational modeling of phosphodiesterase isoenzymes (PDEs) 1-4.
- Integration of individual PDE models into a β-adrenergic signaling pathway model.
- Simulations to analyze cAMP hydrolysis rates, activation-response relationships, and temporal dynamics.
Main Results:
- PDE models accurately reproduce experimental cAMP hydrolysis rates and cGMP regulation.
- The integrated model replicates observed whole-cell cAMP dynamics under varying β-adrenergic stimulation.
- Simulations show compensatory roles among PDEs, with PDE2 and PDE4 being most significant.
- cGMP competitively inhibits cAMP hydrolysis by PDEs 1, 2, and 3, amplifying cAMP signaling.
Conclusions:
- PDE interactions significantly influence cardiac β-adrenergic response.
- PDE2 and PDE4 play crucial roles in regulating cAMP levels through compensatory mechanisms.
- cGMP acts as a potent modulator of cAMP signaling by interacting with PDEs, impacting cardiac function.
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