Afterload

Afterload is the force or pressure that the heart must overcome to eject blood from a ventricle, making it a central concept in cardiovascular biology. For the left ventricle, it is influenced mainly by arterial pressure and systemic vascular resistance; for the right ventricle, pulmonary vascular resistance contributes substantially. When afterload increases, the ventricle must generate more pressure before the semilunar valve opens, which can raise wall stress and reduce stroke volume. Understanding afterload helps explain cardiac adaptation, pressure-volume relationships, hypertension, valvular disease, and how therapies that lower vascular resistance can improve cardiac performance.

Afterload - Related Videos

Research

JoVE Journal - Developmental Biology

Magnetic Adjustment of Afterload in Engineered Heart Tissues

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2020

This protocol provides detailed methods describing the fabrication and implementation of a magnetics-based afterload tuning platform for engineered heart tissues.

Cardiac Loading using Passive Left Atrial Pressurization and Passive Afterload for Graft Assessment

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Cited by 7 •

2024

The protocol describes a porcine ex vivo heart perfusion system in which direct loading of the left ventricle may serve as an assessment technique for graft health while simultaneously providing a holistic evaluation of graft function. A discussion of the system design and possible assessment metrics is also provided.

Cardiac Pressure-Volume Loop Analysis Using Conductance Catheters in Mice

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Cited by 33 •

2015

Cardiac pressure-volume loop analysis is the most comprehensive way to measure cardiac function in the intact heart. We describe a technique to perform and analyze cardiac pressure volume loops, using conductance catheters.

Characterization of the Isolated, Ventilated, and Instrumented Mouse Lung Perfused with Pulsatile Flow

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Cited by 12 •

2011

The following protocol outlines the process of isolating, ventilating and instrumenting mouse lungs to measure steady or pulsatile pulmonary vascular pressure-flow relationships in order to quantify the effects of blood flow, airflow, airway changes and vascular changes on right ventricular afterload.

Research

JoVE Journal - Medicine
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NADH Fluorescence Imaging of Isolated Biventricular Working Rabbit Hearts

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Cited by 24 •

2012

The objective is to monitor the mitochondrial redox state of isolated hearts within the context of physiologic preload and afterload pressures. A biventricular working rabbit heart model is presented. High spatiotemporal resolution fluorescence imaging of NADH is used to monitor the mitochondrial redox state of epicardial tissue.

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