Ventricular-arterial and ventricular-ventricular interactions and their relevance to diastolic filling
Michael Frenneaux1, Lynne Williams
1Department of Cardiovascular Medicine, University of Birmingham, Birmingham, United Kingdom.
Insights
Heart failure with preserved ejection fraction (HFpEF) affects nearly half of all heart failure patients. Stiffening of the arteries and heart in HFpEF patients impairs cardiovascular performance and response to treatments.
Area of Science:
- Cardiology
- Cardiovascular Physiology
Background:
- Chronic heart failure (CHF) traditionally focused on reduced left ventricular (LV) systolic function.
- Nearly half of clinically diagnosed heart failure patients exhibit preserved LV ejection fraction (HFpEF).
Purpose of the Study:
- To explore the role of ventricular-arterial coupling in HFpEF.
- To understand the impact of arterial and ventricular stiffening on cardiovascular performance in HFpEF.
Main Methods:
- The study reviews existing literature on ventricular-arterial coupling, arterial and ventricular stiffness, and hemodynamic stability in HFpEF.
- Indirect evidence regarding diastolic ventricular interaction and pericardial constraint during exercise in HFpEF is examined.
Main Results:
- HFpEF is characterized by both arterial and ventricular stiffening.
- This stiffening leads to increased pressure-load dependence and sensitivity to volume and diuretics.
- Impaired use of the Starling mechanism during exercise may occur due to external constraints on LV filling.
Conclusions:
- Ventricular-arterial coupling is crucial for cardiovascular performance, particularly in HFpEF.
- Arterial and ventricular stiffening significantly impact hemodynamic stability and cardiac reserve in HFpEF patients.
- Further research into diastolic dysfunction and exercise intolerance in HFpEF is warranted.
Abstract:
Chronic heart failure is a common clinical problem, and, until recently, attention has focused predominantly on those patients with reduced left ventricular (LV) systolic function, as evidenced by a reduced LV ejection fraction. However, nearly half of all patients thought clinically to have heart failure have a "preserved" LV ejection fraction, variously defined as greater than 40% to 45% ("heart failure with normal ejection fraction" syndrome). The interaction of the heart with the systemic vasculature, termed ventricular-arterial coupling, is a key determinant of cardiovascular performance. The capacity of the body to augment cardiac output, regulate systemic blood pressure, and respond appropriately to elevations in heart rate and preload depends on both the properties of the heart and the properties of the vasculature into which the heart ejects blood. Although the marked increase of arterial and cardiac stiffness with aging can maintain ventricular-vascular coupling within a normal range, it does have detrimental effects on hemodynamic stability and cardiac reserve. Patients with heart failure with normal ejection fraction have been shown to have both arterial and ventricular stiffening, resulting in enhanced pressure-load dependence and sensitivity of blood pressure to circulating volume and diuretics. There is also indirect evidence to suggest that on exercise, increased external constraint to LV filling (as a result of diastolic ventricular interaction and pericardial constraint) may contribute to impaired use of the Starling mechanism in this group of patients.
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