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Cognitive scientists have observed that having a model of how things work helps clinicians make decisions, even when the model is wrong! We present a paradigm shift of how the circulatory system works that challenges traditional meanings of preload and afterload. We argue that these terms evolved from studies on amphibian skeletal muscles, which function very differently from cardiac muscle. Even though both types of muscles share the same underlying sliding filament process for generating force, the terms preload and afterload developed for skeletal muscle are not applicable to the heart. Our approach is based on the work of Suga and Sagawa who showed that cardiac force production is generated by a time-varying elastance of the walls of the heart. By this process, ventricular walls become progressively stiffer during systole; the final stiffness is called end-systolic elastance (Ees). The elastance increases in straight lines to the maximum stiffness (Ees) whether the ventricular-outflow valves open or not. In other words, the ejecting ventricle does not face an “afterload.” We raise a new term, ejection “threshold load’. This is the pressure that needs to be overcome by the ventricle to open ventricular outflow valves and allow ejection of blood. The threshold load is the equivalent of aortic or pulmonary arterial diastolic pressure. Furthermore, unlike skeletal muscle, a preload is not needed to stretch diastolic myocardium. Rather, ventricular end-diastolic volume determines the maximum pressure that can be reached on Ees during systole. When end-diastolic volume is maximal, so is stroke volume. In summary, Ees, end-diastolic volume, and the threshold load are the three determinants of stroke volume for the ventricles. Finally, we argue that left ventricular stroke volume is determined by the stroke return and stroke volume to and from the right ventricle.
Magder et al. (Mon,) studied this question.