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Published on: August 16, 2021
Systemic Circulation in Advanced Heart Failure and Cardiogenic Shock: State-of-the-Art Review
Sara L Hungerford1,2,3, Kay D Everett1, Gaurav Gulati1
1The CardioVascular Center, Tufts Medical Center, Boston, MA (S.L.H., K.D.E., G.G., N.K.K.).
Insights
Vascular afterload significantly impacts left ventricle function in advanced heart failure and cardiogenic shock. A comprehensive assessment, beyond simple metrics, is crucial for effective treatment strategies.
Area of Science:
- Integrative physiology
- Cardiovascular dynamics
- Hemodynamics
Background:
- Advanced heart failure and cardiogenic shock involve complex left ventricle and systemic circulation interactions.
- Increased aortic stiffness elevates vascular afterload, worsening myocardial oxygen demand and coronary perfusion.
- Current therapies may have variable and detrimental effects on vascular afterload.
Purpose of the Study:
- To review the current understanding of vascular afterload in advanced heart failure and cardiogenic shock.
- To explore the role of mechanical circulatory support systems in managing vascular afterload.
- To propose a more comprehensive framework for assessing vascular afterload, focusing on hydraulic load.
Main Methods:
- State-of-the-art review of existing literature.
- Analysis of vascular afterload components, including steady-state and pulsatile elements.
- Exclusion of preload and venous return to focus solely on afterload.
Main Results:
- Vascular afterload is a critical determinant of left ventricle performance in advanced heart failure.
- Existing methods of quantifying afterload (e.g., mean arterial pressure, systemic vascular resistance) are often insufficient.
- A multi-component approach is necessary for accurate afterload assessment.
Conclusions:
- Understanding and accurately quantifying vascular afterload is essential for managing advanced heart failure and cardiogenic shock.
- Mechanical circulatory support and medical therapies must consider their impact on vascular afterload.
- A refined understanding of vascular afterload can guide improved therapeutic interventions.
Abstract:
The integrative physiology of the left ventricle and systemic circulation is fundamental to our understanding of advanced heart failure and cardiogenic shock. In simplest terms, any increase in aortic stiffness increases the vascular afterload presented to the failing left ventricle. The net effect is increased myocardial oxygen demand and reduced coronary perfusion pressure, thereby further deteriorating contractile function. Although mechanical circulatory support devices should theoretically work in concert with guideline-directed medical therapy, cardiac resynchronization and inotropic and vasopressor agents designed to support myocardial performance and enhance left ventricle recovery, this does not always occur. Each therapy and intervention may result in vastly different and sometimes deleterious effects on vascular afterload. Although best described by a combination of both steady-state and pulsatile components, the latter is frequently overlooked when mean arterial pressure or systemic vascular resistance alone is used to quantify vascular afterload in advanced heart failure and cardiogenic shock. In this state-of-the-art review, we examine what is known about vascular afterload in advanced heart failure and cardiogenic shock, including the use of temporary and permanent mechanical circulatory support systems. Importantly, we outline 4 key components for a more complete assessment of vascular afterload. Unlike previous discussions on this topic, we set aside considerations of venous return and ventricular preload, as important as they are, to focus exclusively on the hydraulic load within the systemic circulation against which the impaired left ventricle must contract.
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