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Pulmonary artery size is associated with functional clinical status in the Fontan circulation
Floris-Jan S Ridderbos1, Bregje E Bonenkamp2, Sophie L Meyer3
1Center for Congenital Heart Diseases, Department of Paediatric Cardiology, Beatrix Children's Hospital, Universitair Medical Center Groningen, Groningen, The Netherlands f.j.s.ridderbos@umcg.nl.
Insights
Pulmonary artery size, measured by Nakata index, predicts functional status in Fontan patients. Smaller arteries correlate with longer follow-up, indicating impaired growth due to non-pulsatile blood flow.
Area of Science:
- Pediatric Cardiology
- Cardiovascular Physiology
- Medical Imaging
Background:
- The Fontan circulation is characterized by non-pulsatile pulmonary blood flow, which may impede pulmonary artery growth.
- Pulmonary vasculature development is crucial for long-term outcomes in Fontan patients.
Purpose of the Study:
- To investigate the correlation between pulmonary artery size (Nakata index) and functional clinical status in Fontan patients.
- To determine if pulmonary artery size predicts exercise capacity and New York Heart Association Functional Class (NYHA-FC).
Main Methods:
- A cross-sectional cohort study included 39 Fontan patients who underwent cardiac magnetic resonance (CMR) and cardiopulmonary exercise testing.
- Pulmonary artery cross-sectional areas were measured via CMR and expressed as the Nakata index.
- Functional status was assessed using peak oxygen consumption (pVO2) and NYHA-FC.
Main Results:
- Fontan patients had a lower Nakata index compared to reference values, which negatively correlated with age and time since Fontan completion.
- Nakata index positively correlated with pVO2 and predicted pVO2, and negatively with NYHA-FC.
- Nakata index was an independent predictor of pVO2, accounting for heart rate and oxygen pulse.
Conclusions:
- Pulmonary artery size, quantified by the Nakata index, is a novel independent predictor of functional status in Fontan circulation.
- The observed correlation suggests that chronic abnormal non-pulsatile pulmonary blood flow contributes to lagging pulmonary arterial growth.
- Nakata index may serve as a valuable biomarker for assessing long-term outcomes in Fontan survivors.
Objective:
In the Fontan circulation, non-pulsatile pulmonary blood flow is suggested to negatively affect pulmonary artery growth. The pulmonary vasculature is regarded a key determinant of outcome after Fontan completion. We hypothesised that in Fontan patients pulmonary artery size correlates with follow-up and functional clinical status.
Methods:
This is a single-centre, cross-sectional cohort study. Thirty-nine paediatric and adult Fontan patients with a concomitant cardiac magnetic resonance (CMR) scan and a cardiopulmonary exercise test between 2012 and 2013 were included. CMR-derived left and right pulmonary artery cross-sectional areas were expressed as Nakata index. Functional status was defined as peak oxygen consumption (pVO2) indexed for weight, as percentage of predicted (pred) and as New York Heart Association Functional Class (NYHA-FC).
Results:
Age at CMR was 18±7.2 years. Time since Fontan completion was 11.9±7.4 years. Nakata index was lower versus the reference values (238.6±78.5 vs 330±30 mm2/m2, p<0.001). Nakata index correlated negatively with age at CMR (r=-0.393, p=0.013) and time since Fontan completion (r=-0.341, p=0.034). pVO2 was 27.9±8.9 mL/min/kg and pVO2pred was 58.1%±14.1%. Nakata index correlated positively with pVO2 (r=0.468, p=0.003) and pVO2pred (r=0.353, p=0.028). Nakata index correlated negatively with NYHA-FC (r=-0.450, p=0.004). Nakata index was an independent predictor (β=0.359, p=0.007) for pVO2 (adjusted R2=0.442, with maximum heart rate and oxygen pulse at peak exercise).
Conclusions:
Pulmonary artery size expressed as Nakata index is a novel independent predictor for functional clinical status. Nakata index negatively correlated with follow-up duration, suggesting that chronic abnormal non-pulsatile pulmonary blood flow plays a role in lagging pulmonary arterial growth in the Fontan circulation.
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