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Impact of Age-related change in Caval Flow Ratio on Hepatic Flow Distribution in Fontan
Insights
The Fontan operation
Area of Science:
- Cardiovascular Surgery
- Pediatric Cardiology
- Biomedical Engineering
Background:
- The Fontan operation is a palliative surgery for single ventricle heart disease.
- Balanced hepatic flow distribution (HFD) is crucial for preventing complications like cyanosis.
- HFD is influenced by hemodynamics within the Fontan circulation.
Approach:
- Cardiac MRI (CMR) data and patient-specific computational fluid dynamics (CFD) modeling were used.
- Analyzed age-related changes in superior vena cava (SVC) and inferior vena cava (IVC) flow ratios.
- Quantified HFD in extracardiac (EC) and lateral tunnel (LT) Fontan models at different ages.
Key Points:
- SVC:IVC flow ratio shifts towards lower body predominance around age 8.
- HFD variations due to age-related inflow changes were significant in LT but not EC Fontan types.
- Correlation between IVC flow distribution and HFD weakens with increasing age due to flow perturbations.
Conclusions:
- Age-related changes in caval inflows significantly impact long-term HFD in Fontan patients, especially with LT connections.
- Including SVC:IVC variations over time in CFD models is vital for understanding Fontan hemodynamics.
- Findings aid in predicting long-term outcomes and optimizing Fontan surgical planning.
Background:
The Fontan operation is a palliative technique for patients born with single ventricle heart disease. The superior vena cava (SVC), inferior vena cava (IVC), and hepatic veins are connected to the pulmonary arteries in a total cavopulmonary connection by an extracardiac (EC) conduit or a lateral tunnel (LT) connection. A balanced hepatic flow distribution (HFD) to both lungs is essential to prevent pulmonary arteriovenous malformations and cyanosis. HFD is highly dependent on the local hemodynamics.
Objective:
The effect of age-related changes in caval inflows on HFD was evaluated using cardiac MRI (CMR) data and patient-specific computational fluid dynamics (CFD) modeling.
Methods:
SVC and IVC flow from 414 Fontan patients were collected to establish a relationship between SVC:IVC flow ratio and age. CFD modeling was performed in 60 (30 EC and 30 LT) patient models to quantify the HFD that corresponded to patient ages of 3, 8, and 15 years, respectively.
Results:
SVC:IVC flow ratio inverted at ∼8 years of age, indicating a clear shift to lower body flow predominance. Our data showed that variation of HFD in response to age-related changes in caval inflows (SVC:IVC = 2,1, and 0.5 corresponded to ages 3, 8, and 15+ respectively) was not significant for EC but statistically significant for LT cohorts. For all three caval inflow ratios, a positive correlation existed between the IVC flow distribution to both the lungs and the HFD. However, as the SVC:IVC ratio changed from 2→0.5 (age 3→15+), the correlation's strength decreased from 0.87→0.64, due to potential flow perturbation as IVC flow momentum increased.
Conclusion:
Our analysis provided quantitative insights into the impact of the changing caval inflows on Fontan's long-term HFD, highlighting the importance of including SVC:IVC variations over time to understand Fontan's long-term hemodynamics. These findings broaden our understanding of Fontan hemodynamics and patient outcomes.
Clinical Perspective:
With improvement in standard of care and management of single ventricle patients with Fontan physiology, the population of adults with Fontan circulation is increasing. Consequently, there is a clinical need to comprehend the impact of patient growth on Fontan hemodynamics. Using CMR data, we were able to quantify the relationship between changing caval inflows and somatic growth. We then used patient-specific computational flow modeling to quantify how this relationship affected the distribution of long-term hepatic flow in extracardiac and lateral tunnel Fontan types. Our findings demonstrated the significance of including SVC:IVC changes over time in CFD modeling to learn more about the long-term hemodynamics of Fontan. Fontan surgical approaches are increasingly planned and optimized using computational flow modeling. For a patient undergoing a Fontan procedure, the workflow presented in this study that takes into account the variations in Caval inflows over time can aid in predicting the long-term hemodynamics in a planned Fontan pathway.
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