Phospholemman is a negative feed-forward regulator of Ca2+ in β-adrenergic signaling, accelerating β-adrenergic
Jason H Yang1, Jeffrey J Saucerman
1Department of Biomedical Engineering, University of Virginia, Charlottesville, VA 22908, USA. jhyang@virginia.edu
Abstract:
Sympathetic stimulation enhances cardiac contractility by stimulating β-adrenergic signaling and protein kinase A (PKA). Recently, phospholemman (PLM) has emerged as an important PKA substrate capable of regulating cytosolic Ca(2+) transients. However, it remains unclear how PLM contributes to β-adrenergic inotropy. Here we developed a computational model to clarify PLM's role in the β-adrenergic signaling response. Simulating Na(+) and sarcoplasmic reticulum (SR) Ca(2+) clamps, we identify an effect of PLM phosphorylation on SR unloading as the key mechanism by which PLM confers cytosolic Ca(2+) adaptation to long-term β-adrenergic receptor (β-AR) stimulation. Moreover, we show that phospholamban (PLB) opposes and overtakes these actions on SR load, forming a negative feed-forward loop in the β-adrenergic signaling cascade. This network motif dominates the negative feedback conferred by β-AR desensitization and accelerates β-AR-induced inotropy. Model analysis therefore unmasks key actions of PLM phosphorylation during β-adrenergic signaling, indicating that PLM is a critical component of the fight-or-flight response.
Insights
Phospholemman (PLM) phosphorylation is key to cardiac adaptation during sympathetic stimulation. It regulates calcium handling, working with phospholamban (PLB) to enhance the fight-or-flight response.
Area of Science:
- Cardiovascular Physiology
- Molecular Signaling
- Computational Biology
Background:
- Sympathetic stimulation increases cardiac contractility via beta-adrenergic signaling and protein kinase A (PKA).
- Phospholemman (PLM) is a PKA substrate influencing calcium transients, but its role in beta-adrenergic inotropy is not fully understood.
Purpose of the Study:
- To elucidate the precise role of PLM in the beta-adrenergic signaling pathway using a computational model.
- To identify the mechanisms by which PLM contributes to cardiac adaptation during sustained sympathetic activation.
Main Methods:
- Development of a computational model simulating cardiac ion dynamics.
- Application of sodium (Na+) and sarcoplasmic reticulum (SR) calcium (Ca2+) clamps to analyze PLM's effects.
- Analysis of the interplay between PLM, phospholamban (PLB), and beta-adrenergic receptor (beta-AR) desensitization.
Main Results:
- PLM phosphorylation critically impacts SR unloading, mediating cytosolic Ca2+ adaptation to long-term beta-AR stimulation.
- PLB opposes PLM's effects on SR Ca2+ load, creating a negative feed-forward loop within the beta-adrenergic cascade.
- This regulatory network accelerates beta-AR-induced inotropy and overrides beta-AR desensitization.
Conclusions:
- PLM phosphorylation is a crucial mechanism for adapting cardiac function during the fight-or-flight response.
- PLM acts as a key regulator within the beta-adrenergic signaling cascade, influencing cardiac contractility.
- The interaction between PLM and PLB highlights a complex regulatory network governing cardiac calcium handling.
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