Why the study?
Pediatric heart transplant recipients have reduced exercise capacity, typically two-thirds of predicted values, but the underlying mechanisms are not fully understood.
How do cardiorespiratory and metabolic responses to progressive exercise differ between pediatric heart transplant recipients and matched controls?
How do cardiorespiratory and metabolic responses to progressive exercise differ between pediatric heart transplant recipients and matched controls?
Pediatric heart transplant recipients maintain similar oxygen consumption during exercise compared to matched controls by increasing peripheral oxygen extraction to compensate for attenuated cardiac responses.
Exercise capacity appears preserved in pediatric HTx via peripheral compensation; hypothesis-generating and should not yet change practice.
INTRODUCTION: Pediatric heart transplant (HTx) recipients have reduced exercise capacity typically two-thirds of predicted values, the mechanisms of which are not fully understood. We sought to assess the cardiorespiratory responses to progressive exercise in HTx relative to controls matched for age, sex, body size, and work rate. METHODS: Fourteen HTx recipients and matched controls underwent exercise stress echocardiography on a semisupine cycle ergometer. Hemodynamics, left ventricular (LV) dimensions, and volumes were obtained and indexed to body surface area. Oxygen consumption (V˙O2) was measured, and arteriovenous oxygen difference was estimated using the Fick Principle. RESULTS: At rest, LV mass index (P = 0.03) and volumes (P < 0.001) were significantly smaller in HTx, whereas wall thickness (P < 0.01) and LV mass-to-volume ratio (P = 0.01) were greater. Differences in LV dimensions and stroke volume persisted throughout exercise, but the pattern of response was similar between groups as HR increased. As exercise progressed, heart rate and cardiac index increased to a lesser extent in HTx. Despite this, V˙O2 was similar (P = 0.82) at equivalent work rates as HTx had a greater change in arteriovenous oxygen difference (P < 0.01). CONCLUSIONS: When matched for work rate, HTx had similar metabolic responses to controls despite having smaller LV chambers and an attenuated increase in hemodynamic responses. These findings suggest that HTx may increase peripheral O2 extraction as a compensatory mechanism in response to reduced cardiovascular function.
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Bovard et al. (2019) studied this question.
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