Why the study?
The effect of muscle metaboreflex activation on effective arterial elastance in normal subjects was unknown, and whether this reflex control is altered in heart failure had not been investigated.
Does muscle metaboreflex activation alter effective arterial elastance and ventricular-vascular coupling in healthy and heart failure canines?
Does muscle metaboreflex activation alter effective arterial elastance and ventricular-vascular coupling in healthy and heart failure canines?
In a canine model of heart failure, exaggerated muscle metaboreflex activation increases effective arterial elastance, worsening ventricular-vascular coupling and likely contributing to impaired cardiac output during exercise.
MMA shifts to vasoconstriction in HF; leaves open whether metaboreflex modulation improves human outcomes.
Dynamic exercise elicits robust increases in sympathetic activity in part due to muscle metaboreflex activation (MMA), a pressor response triggered by activation of skeletal muscle afferents. MMA during dynamic exercise increases arterial pressure by increasing cardiac output via increases in heart rate, ventricular contractility, and central blood volume mobilization. In heart failure, ventricular function is compromised, and MMA elicits peripheral vasoconstriction. Ventricular-vascular coupling reflects the efficiency of energy transfer from the left ventricle to the systemic circulation and is calculated as the ratio of effective arterial elastance ( E a ) to left ventricular maximal elastance ( E max ). The effect of MMA on E a in normal subjects is unknown. Furthermore, whether muscle metaboreflex control of E a is altered in heart failure has not been investigated. We utilized two previously published methods of evaluating E a [end-systolic pressure/stroke volume ( E aPV )] and [heart rate × vascular resistance ( E aZ )] during rest, mild treadmill exercise, and MMA (induced via partial reductions in hindlimb blood flow imposed during exercise) in chronically instrumented conscious canines before and after induction of heart failure via rapid ventricular pacing. In healthy animals, MMA elicits significant increases in effective arterial elastance and stroke work that likely maintains ventricular-vascular coupling. In heart failure, E a is high, and MMA-induced increases are exaggerated, which further exacerbates the already uncoupled ventricular-vascular relationship, which likely contributes to the impaired ability to raise stroke work and cardiac output during exercise in heart failure.
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Mannozzi et al. (2020) studied this question.
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