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Bilateral bidirectional cavopulmonary connection: a review of surgical techniques and clinical implications
Sara C Arrigoni1, Tjark Ebels1
1Department of Cardiothoracic Surgery, University Medical Centre Groningen, University of Groningen, Groningen, The Netherlands.
Insights
Bilateral superior caval veins (bSCVs) complicate Fontan surgery. This review analyzes surgical techniques and highlights computational fluid dynamics for personalized strategies to improve outcomes in single ventricle patients with bSCVs.
Area of Science:
- Congenital Heart Surgery
- Pediatric Cardiology
- Medical Imaging and Simulation
Background:
- Bilateral superior caval veins (bSCVs) present unique challenges in single ventricle palliation.
- These anatomical variations can impede pulmonary artery growth and increase thrombotic risk in Fontan patients.
- Existing surgical techniques for bidirectional Glenn anastomosis in bSCV cases have limitations.
Purpose of the Study:
- To review critical issues associated with bSCVs in univentricular physiology.
- To analyze the pros and cons of various surgical techniques for bidirectional Glenn.
- To explore the potential of computational fluid dynamics (CFD) for optimizing surgical strategies.
Main Methods:
- Literature review of surgical techniques for bSCVs in single ventricle patients.
- Analysis of short-term outcomes for V- or Y-shaped anastomosis and unifocalization.
- Discussion on the role of CFD in simulating surgical feasibility and hemodynamic patterns.
Main Results:
- V- or Y-shaped techniques show promising short-term results but may have anatomical limitations.
- Unifocalization offers a 'normal' Glenn configuration, but long-term data are lacking.
- Pulsatile pulmonary flow may aid artery growth but increases complication risks.
Conclusions:
- Surgical management of bSCVs requires careful consideration of technique feasibility and patient-specific anatomy.
- Computational fluid dynamics simulation holds promise for identifying optimal, individualized surgical approaches.
- Further research is needed to establish long-term outcomes for newer techniques and CFD-guided strategies.
Abstract:
The presence of bilateral superior caval veins (bSCVs) could negatively influence the outcome of Fontan patients. In the setting of a bilateral bidirectional Glenn, the selective blood flow to the ipsilateral long with consequent flow stagnation in the connecting portion could lead to poor growth of the central portion of the pulmonary artery, potentially affecting the eligibility for Fontan completion and being associated with a higher incidence of thrombotic complications. Alternative surgical techniques have been described to perform a bidirectional cavopulmonary anastomosis in the presence of bSCVs aiming to achieve a balanced growth of the pulmonary bifurcation. The short-term results of these techniques such as the V- or Y-shape seem to be excellent; however, some anatomical settings could affect the feasibility of these techniques. The so-called "unifocalization" creates a configuration comparable to a "normal" bidirectional Glenn and could be a feasible alternative. However, the long-term results of this technique are not published yet. The positive effect of additional pulsatile pulmonary flow on pulmonary artery growth should be considered in case of bilateral bidirectional Glenn, despite the higher incidence of postoperative complications reported and the difficult calibration of the amount of additional flow. The role of computational fluid dynamic to simulate the surgical strategy in single ventricle patients is promising and could be worthwhile in the setting of bSCVs. In fact, the surgical techniques of bilateral bidirectional Glenn could be simulated testing their feasibility and allowing to identify the more favorable hemodynamic pattern, patient specific. This review article highlights the critical issues related to the presence of bSCVs in univentricular physiology, analyzing pros and cons of the different surgical techniques. Besides reviewing the literature, this manuscript focuses on the role of computational fluid simulation in identifying the most favorable surgical technique with an individualized approach, which could potentially improve the clinical outcome.
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