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Updated: Nov 28, 2025

Rat Model of Right-Sided Cardiac Remodeling and Arrhythmia Using Pulmonary Artery Banding
Published on: August 30, 2024
Cellular contribution to left and right atrial dysfunction in chronic arterial hypertension in pigs
Ge Jin1,2, Martin Manninger1, Gabriel Adelsmayr3
1Division of Cardiology, Medical University of Graz, Graz, Austria.
Insights
Hypertensive heart disease (HHD) causes atrial remodelling and contractile dysfunction. In pigs with HHD, impaired calcium handling in atrial cells, particularly the left atrium, was identified, suggesting a therapeutic target.
Area of Science:
- Cardiology
- Physiology
- Molecular Biology
Background:
- Atrial contractile dysfunction worsens prognosis in hypertensive heart disease (HHD).
- Cellular mechanisms of atrial remodeling and dysfunction in HHD remain unclear.
- Understanding cardiomyocyte dysfunction is crucial for HHD management.
Purpose of the Study:
- To investigate and compare cellular mechanisms of left (LA) and right atrial (RA) contractile dysfunction in pigs with HHD.
- To elucidate the role of cardiomyocyte calcium handling in atrial remodeling in HHD.
- To explore potential therapeutic strategies targeting calcium regulation in HHD.
Main Methods:
- Induction of HHD in pigs using a deoxycorticosterone acetate/high-salt/glucose diet.
- In vivo electrophysiological and magnetic resonance imaging studies.
- Isolation and functional assessment of LA and RA cardiomyocytes, including calcium transient and sarcoplasmic reticulum calcium measurements.
- Pharmacological inhibition of the sodium-calcium exchanger (NCX).
Main Results:
- HHD induced significant atrial remodeling and contractile dysfunction in LA and RA.
- Atrial remodeling was linked to increased atrial fibrillation inducibility but not altered refractory period or fibrosis.
- LA cardiomyocytes exhibited reduced sarcoplasmic reticulum calcium, while RA cardiomyocytes showed increased Ca2+-ATPase activity.
- Selective NCX inhibition improved calcium transient amplitude and sarcoplasmic reticulum calcium in LA cardiomyocytes from HHD pigs.
Conclusions:
- Atrial remodeling in HHD involves differential LA and RA cardiomyocyte dysfunction and altered calcium signaling.
- Selective NCX inhibition shows promise for improving atrial contractility in HHD.
- Targeting NCX may represent a novel therapeutic approach for atrial dysfunction in hypertensive heart disease.
Aims:
Atrial contractile dysfunction contributes to worse prognosis in hypertensive heart disease (HHD), but the role of cardiomyocyte dysfunction in atrial remodelling in HHD is not well understood. We investigated and compared cellular mechanisms of left (LA) and right atrial (RA) contractile dysfunction in pigs with HHD.
Methods And Results:
In vivo electrophysiological and magnetic resonance imaging studies were performed in control and pigs treated with 11-deoxycorticosterone acetate (DOCA)/high-salt/glucose diet (12 weeks) to induce HHD. HHD leads to significant atrial remodelling and loss of contractile function in LA and a similar trend in RA (magnetic resonance imaging). Atrial remodelling was associated with a higher inducibility of atrial fibrillation but unrelated to changes in atrial refractory period or fibrosis (histology). Reduced atrial function in DOCA pigs was related to reduced contraction amplitude of isolated LA (already at baseline) and RA myocytes (at higher frequencies) due to reduced intracellular Ca release (Fura 2-AM, field stimulation). However, Ca regulation differed in LA and RA cardiomyocytes: LA cardiomyocytes showed reduced sarcoplasmic reticulum (SR) [Ca], whereas in RA, SR [Ca] was unchanged and SR Ca2+ -ATPase activity was increased. Sodium-calcium exchanger (NCX) activity was not significantly altered. We used ORM-10103 (3 μM), a specific NCX inhibitor to improve Ca availability in LA and RA cardiomyocytes from DOCA pigs. Partial inhibition of NCX increased Ca2+ transient amplitude and SR Ca in LA, but not RA cells.
Conclusions:
In this large animal model of HHD, atrial remodelling in sinus rhythm in vivo was related to differential LA and RA cardiomyocyte dysfunction and Ca signalling. Selective acute inhibition of NCX improved Ca release in diseased LA cardiomyocytes, suggesting a potential therapeutic approach to improve atrial inotropy in HHD.
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