GPER limits adverse changes to Ca2+ signalling and arrhythmogenic activity in ovariectomised guinea pig
Alice J Francis1, Jahn M Firth1, Jose L Sanchez-Alonso1
1National Heart and Lung Institute, Imperial College, Hammersmith Hospital, London, United Kingdom.
Abstract:
Background: The increased risk of post-menopausal women developing abnormalities of heart function emphasises the requirement to understand the effect of declining oestrogen levels on cardiac electrophysiology and structure, and investigate possible therapeutic targets, namely the G protein-coupled oestrogen receptor 1 (GPER). Methods: Female guinea pigs underwent sham or ovariectomy (OVx) surgeries. Cardiomyocytes were isolated 150-days post-operatively. Membrane structure was assessed using di-8-ANEPPs staining and scanning ion conductance microscopy. Imunnohistochemistry (IHC) determined the localisation of oestrogen receptors. The effect of GPER activation on excitation-contraction coupling mechanisms were assessed using electrophysiological and fluorescence techniques. Downstream signalling proteins were investigated by western blot. Results: IHC staining confirmed the presence of nuclear oestrogen receptors and GPER, the latter prominently localised to the peri-nuclear region and having a clear striated pattern elsewhere in the cells. Following OVx, GPER expression increased and its activation reduced Ca2+ transient amplitude (by 40%) and sarcomere shortening (by 32%). In these cells, GPER activation reduced abnormal spontaneous Ca2+ activity, shortened action potential duration and limited drug-induced early after-depolarisation formation. Conclusion: In an animal species with comparable steroidogenesis and cardiac physiology to humans, we show the expression and localisation of all three oestrogen receptors in cardiac myocytes. We found that following oestrogen withdrawal, GPER expression increased and its activation limited arrhythmogenic behaviours in this low oestrogen state, indicating a potential cardioprotective role of this receptor in post-menopausal women.
Insights
Declining oestrogen increases GPER expression in heart cells. Activating this receptor (GPER) in post-menopausal models reduced abnormal heart rhythms, suggesting a cardioprotective role.
Area of Science:
- Cardiology
- Endocrinology
- Molecular Biology
Background:
- Post-menopausal women face increased risk of cardiac dysfunction due to declining oestrogen.
- Understanding oestrogen's impact on cardiac electrophysiology and structure is crucial.
- G protein-coupled oestrogen receptor 1 (GPER) is a potential therapeutic target.
Purpose of the Study:
- To investigate the role of GPER in cardiac function following oestrogen withdrawal.
- To assess GPER's localization and effect on cardiomyocyte electrophysiology and structure.
- To explore GPER's potential cardioprotective mechanisms in a post-menopausal model.
Main Methods:
- Ovariectomy (OVx) in female guinea pigs to simulate post-menopausal oestrogen decline.
- Cardiomyocyte isolation and assessment of membrane structure.
- Immunohistochemistry (IHC) for oestrogen receptor localization.
- Electrophysiological and fluorescence techniques to evaluate GPER activation effects.
- Western blot analysis for downstream signaling proteins.
Main Results:
- IHC confirmed oestrogen receptors and GPER in cardiac myocytes, with GPER localized to the peri-nuclear region and striated patterns.
- Ovariectomy increased GPER expression.
- GPER activation in OVx cardiomyocytes reduced Ca2+ transient amplitude (40%) and sarcomere shortening (32%).
- GPER activation mitigated spontaneous Ca2+ activity, shortened action potential duration, and limited early after-depolarizations.
Conclusions:
- Cardiac myocytes express all three oestrogen receptors, including GPER.
- Following oestrogen withdrawal, increased GPER expression and activation demonstrated a potential cardioprotective effect.
- GPER activation limited arrhythmogenic behaviors in a low-oestrogen state, indicating therapeutic potential for post-menopausal women.
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