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Circulatory Response to Rapid Volume Expansion and Cardiorespiratory Fitness in Fontan Circulation
Thomas Möller1, Vibeke Klungerbo2,3, Simone Diab2,3
1Department of Paediatric Cardiology, Oslo University Hospital Rikshospitalet, Nydalen, P.O. Box 4950, 0424, Oslo, Norway. thomas.moller@ous-hf.no.
Insights
Fontan circulation limitations are revealed by preload challenges, showing elevated pressures linked to reduced cardiorespiratory fitness (CRF). Right ventricular morphology shows more flow issues, suggesting ventricular dysfunction impacts Fontan patient health.
Area of Science:
- Pediatric Cardiology
- Cardiovascular Physiology
- Congenital Heart Disease Research
Background:
- Fontan failure pathophysiology is not fully understood.
- Single ventricle dysfunction's role in Fontan failure requires further investigation.
- Assessing hemodynamic responses to altered preload is crucial for understanding Fontan circulation limitations.
Purpose of the Study:
- To evaluate hemodynamic responses to preload increase in Fontan circulation.
- To determine if circulatory limitations identified by preload increase correlate with cardiorespiratory fitness (CRF).
- To assess the impact of left versus right ventricular morphology on these responses.
Main Methods:
- Heart catheterization with rapid volume expansion (5 mL/kg) in 38 Fontan patients.
- Measurement of central venous pressure (CVP) and ventricular end-diastolic pressure (VEDP) at baseline and steady state.
- Assessment of cardiorespiratory fitness (CRF) using peak oxygen consumption (VO2peak) and ventilatory threshold (VT).
Main Results:
- Preload increase elevated both CVP and VEDP, indicating circulatory limitations.
- Elevated CVP and VEDP were associated with impaired CRF (lower VO2peak and VT).
- Right ventricular morphology showed more pronounced transpulmonary flow limitations.
Conclusions:
- Preload challenges reveal functional limitations in Fontan circulation not apparent at baseline.
- Elevated CVP and VEDP post-preload challenge correlate with reduced cardiorespiratory fitness.
- Ventricular morphology influences hemodynamic response, and dysfunction may contribute to long-term Fontan patient impairment.
Abstract:
The role of dysfunction of the single ventricle in Fontan failure is incompletely understood. We aimed to evaluate hemodynamic responses to preload increase in Fontan circulation, to determine whether circulatory limitations in different locations identified by experimental preload increase are associated with cardiorespiratory fitness (CRF), and to assess the impact of left versus right ventricular morphology. In 38 consecutive patients (median age = 16.6 years, 16 females), heart catheterization was supplemented with a rapid 5-mL/kg body weight volume expansion. Central venous pressure (CVP), ventricular end-diastolic pressure (VEDP), and peak systolic pressure were averaged for 15‒30 s, 45‒120 s, and 4‒6 min (steady state), respectively. CRF was assessed by peak oxygen consumption (VO2peak) and ventilatory threshold (VT). Median CVP increased from 13 mmHg at baseline to 14.5 mmHg (p < 0.001) at steady state. CVP increased by more than 20% in eight patients. Median VEDP increased from 10 mmHg at baseline to 11.5 mmHg (p < 0.001). Ten patients had elevated VEDP at steady state, and in 21, VEDP increased more than 20%. The transpulmonary pressure difference (CVP‒VEDP) and CVP were consistently higher in patients with right ventricular morphology across repeated measurements. CVP at any stage was associated with VO2peak and VT. VEDP after volume expansion was associated with VT. Preload challenge demonstrates the limitations beyond baseline measurements. Elevation of both CVP and VEDP are associated with impaired CRF. Transpulmonary flow limitation was more pronounced in right ventricular morphology. Ventricular dysfunction may contribute to functional impairment after Fontan operation in young adulthood.ClinicalTrials.gov identifier NCT02378857.
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