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Aberrant PLN-R14del Protein Interactions Intensify SERCA2a Inhibition, Driving Impaired Ca2+ Handling and
Elizabeth Vafiadaki1, Kobra Haghighi2, Demetrios A Arvanitis1
1Molecular Biology Division, Biomedical Research Foundation of the Academy of Athens, 11527 Athens, Greece.
Abstract:
Phospholamban (PLN), a key modulator of Ca2+-homeostasis, inhibits sarcoplasmic reticulum (SR) calcium-ATPase (SERCA2a) and regulates cardiac contractility. The human PLN mutation R14del has been identified in arrhythmogenic cardiomyopathy patients worldwide and is currently extensively investigated. In search of the molecular mechanisms mediating the pathological phenotype, we examined PLN-R14del associations to known PLN-interacting partners. We determined that PLN-R14del interactions to key Ca2+-handling proteins SERCA2a and HS-1-associated protein X-1 (HAX-1) were enhanced, indicating the super-inhibition of SERCA2a's Ca2+-affinity. Additionally, histidine-rich calcium binding protein (HRC) binding to SERCA2a was increased, suggesting the inhibition of SERCA2a maximal velocity. As phosphorylation relieves the inhibitory effect of PLN on SERCA2a activity, we examined the impact of phosphorylation on the PLN-R14del/SERCA2a interaction. Contrary to PLN-WT, phosphorylation did not affect PLN-R14del binding to SERCA2a, due to a lack of Ser-16 phosphorylation in PLN-R14del. No changes were observed in the subcellular distribution of PLN-R14del or its co-localization to SERCA2a. However, in silico predictions suggest structural perturbations in PLN-R14del that could impact its binding and function. Our findings reveal for the first time that by increased binding to SERCA2a and HAX-1, PLN-R14del acts as an enhanced inhibitor of SERCA2a, causing a cascade of molecular events contributing to impaired Ca2+-homeostasis and arrhythmogenesis. Relieving SERCA2a super-inhibition could offer a promising therapeutic approach for PLN-R14del patients.
Insights
The PLN-R14del mutation enhances inhibition of SERCA2a by increasing binding to SERCA2a and HAX-1. This impaired calcium handling contributes to arrhythmogenesis, suggesting SERCA2a super-inhibition as a therapeutic target.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Biochemistry
Background:
- Phospholamban (PLN) regulates cardiac contractility by inhibiting SERCA2a.
- The PLN R14del mutation is linked to arrhythmogenic cardiomyopathy.
- Understanding PLN-R14del's molecular mechanisms is crucial for therapeutic development.
Purpose of the Study:
- To investigate the molecular mechanisms by which the PLN R14del mutation contributes to arrhythmogenic cardiomyopathy.
- To examine the effects of PLN R14del on interactions with key calcium-handling proteins.
Main Methods:
- Assessed PLN-R14del interactions with SERCA2a and HAX-1.
- Investigated the impact of phosphorylation on PLN-R14del/SERCA2a binding.
- Utilized in silico predictions for structural analysis.
Main Results:
- PLN-R14del showed enhanced binding to SERCA2a and HAX-1, leading to SERCA2a super-inhibition.
- Phosphorylation failed to relieve SERCA2a inhibition by PLN-R14del due to lack of Ser-16 phosphorylation.
- In silico analysis suggested structural alterations in PLN-R14del impacting function.
Conclusions:
- PLN-R14del acts as a potent inhibitor of SERCA2a, disrupting calcium homeostasis and promoting arrhythmogenesis.
- Targeting SERCA2a super-inhibition presents a potential therapeutic strategy for PLN-R14del patients.
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