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Aldosterone and Potassium in Heart Failure: Overcoming This Major Impediment in Clinical Practice
Laibah Arshad Khan1, Adeena Jamil2, Stephen J Greene3,4
1Department of Medicine, University of Mississippi Medical Center Jackson, MS, US.
Insights
Abnormal serum potassium (dyskalaemia) is common in heart failure (HF) and linked to adverse outcomes. Managing potassium levels is crucial for optimizing HF treatment and improving patient survival.
Area of Science:
- Cardiology
- Endocrinology
- Nephrology
Background:
- Aldosterone regulates fluid and electrolyte balance, crucial for cardiovascular health.
- Dysregulated aldosterone in heart failure (HF) drives cardiac remodeling and poor outcomes.
- Potassium homeostasis is vital for cardiac, gastrointestinal, and neuromuscular function, influenced by aldosterone.
Purpose of the Study:
- To review the impact of dyskalaemia (hypokalaemia and hyperkalaemia) in heart failure.
- To discuss current and future management strategies for dyskalaemia in HF.
- To highlight the role of potassium binders in optimizing HF therapy.
Main Methods:
- Literature review of studies on aldosterone, potassium, and heart failure.
- Analysis of the prognostic implications of serum potassium levels in HF patients.
- Discussion of therapeutic interventions including aldosterone modulators and potassium binders.
Main Results:
- Dyskalaemia is prevalent in HF due to disease, therapies, and comorbidities like CKD.
- Both hypokalaemia and hyperkalaemia are associated with increased mortality and adverse events in HF.
- Hyperkalaemia restricts the use of essential RAAS inhibitors, impacting long-term survival.
Conclusions:
- Effective management of dyskalaemia is essential for optimizing HF treatment.
- Novel potassium binders offer a promising approach to manage hyperkalaemia, enabling better RAAS inhibitor titration.
- Future aldosterone-modulating therapies hold potential for improved HF management.
Abstract:
Aldosterone is a key regulator of fluid and electrolyte balance in the body. It is often dysregulated in heart failure (HF) and is a key driver of cardiac remodelling and worse clinical outcomes. Potassium regulation is essential for normal cardiac, gastrointestinal and neuromuscular function. Serum potassium fluctuations are largely determined by aldosterone, the final step of the renin-angiotensin-aldosterone system. Dyskalaemia (i.e. hypokalaemia and hyperkalaemia) is prevalent in HF because of the disease itself, its therapies and related comorbidities such as chronic kidney disease. Prognostic implications of abnormal serum potassium follow a U-shaped curve, where both hypokalaemia and hyperkalaemia are associated with adverse outcomes. Hypokalaemia is associated with increased mortality, starting from potassium <4.0 mmol/l but especially at potassium <3.5 mmol/l. Hyperkalaemia, along with increasing arrhythmia risk, limits the use of lifesaving renin-angiotensin- aldosterone system inhibitors, which may have long-term survival implications. The advent of novel potassium binders aims to manage chronic hyperkalaemia and may allow for uptitration and optimal dosing of guideline-recommended therapy. This review discusses the impacts of dyskalaemia in HF, along with management strategies, including the relevance of potassium binder use in optimising HF treatment. Current and potential future aldosterone-modulating therapies, such as non-steroidal mineralocorticoid receptor antagonists and aldosterone synthase inhibitors, are also discussed.
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