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External airway splint placement for severe pediatric tracheobronchomalacia
Kaitlyn A Brooks1, Annie Y Lai2, Sarah J Tucker3
1Department of Otolaryngology- Head and Neck Surgery, Children's Healthcare of Atlanta, Emory University School of Medicine, Atlanta, GA, USA.
Insights
External airway splinting with bioabsorbable airway supportive devices (ASD) shows promise for severe pediatric tracheomalacia (TM) and tracheobronchomalacia (TBM). This innovative approach can help wean patients from respiratory support and improve airway patency.
Area of Science:
- Pediatric Surgery
- Biomaterials Engineering
- 3D Printing Technology
Background:
- Severe pediatric tracheomalacia (TM) and tracheobronchomalacia (TBM) present life-threatening respiratory challenges.
- Existing treatments may be insufficient for complex cases, necessitating novel interventions.
Purpose of the Study:
- To evaluate the efficacy of external airway splinting using bioabsorbable airway supportive devices (ASD) for severe pediatric TM/TBM.
- To assess the role of 3D-printed bioabsorbable devices in managing critical airway collapse.
Main Methods:
- Retrospective cohort study of 5 pediatric patients with severe TM/TBM undergoing ASD placement.
- Custom bioabsorbable polycaprolactone (PCL) ASDs designed using 3D printing and finite element (FE) modeling for optimal suture placement.
- Surgical placement via cardiothoracic and otolaryngology teams with synchronous bronchoscopy.
Main Results:
- Three of three patients dependent on respiratory support post-vascular ring division weaned to room air after ASD placement.
- One of two patients with prior tracheostomies and apparent life-threatening events (ALTE) successfully weaned from respiratory support post-ASD.
- One patient experienced mortality due to respiratory co-morbidities; ASD was successfully placed.
Conclusions:
- Bioabsorbable airway supportive devices (ASD) offer significant benefits for severe, refractory pediatric tracheomalacia/tracheobronchomalacia.
- Multidisciplinary team collaboration and careful patient selection are crucial for successful ASD implementation.
- Pre-operative airway modeling aids in precise suture placement for effective management of airway collapse.
Objective:
To present external airway splinting with bioabsorbable airway supportive devices (ASD) for severe, life-threatening cases of pediatric tracheomalacia (TM) or tracheobronchomalacia (TBM).
Methods:
A retrospective cohort was performed for 5 pediatric patients with severe TM or TBM who underwent ASD placement. Devices were designed and 3D-printed from a bioabsorbable material, polycaprolactone (PCL). Pre-operative planning included 3-dimensional airway modeling of tracheal collapse and tracheal suture placement using nonlinear finite element (FE) methods. Pre-operative modeling revealed that triads along the ASD open edges and center were the most effective suture locations for optimizing airway patency. Pediatric cardiothoracic surgery and otolaryngology applied the ASDs by suspending the trachea to the ASD with synchronous bronchoscopy. Respiratory needs were trended for all cases. Data from pediatric patients with tracheostomy and diagnosis of TM or TBM, but without ASD, were included for discussion.
Results:
Five patients (2 Females, 3 Males, ages 2-9 months at time of ASD) were included. Three patients were unable to wean from respiratory support after vascular ring division; all three weaned to room air post-ASD. Two patients received tracheostomies prior to ASD placement, but continued to experience apparent life-threatening events (ALTE) and required ventilation with supraphysiologic ventilator settings. One patient weaned respiratory support successfully after ASD placement. The last patient died post-ASD due to significant respiratory co-morbidity.
Conclusion:
ASD can significantly benefit patients with severe, unrelenting tracheomalacia or tracheobronchomalacia. Proper multidisciplinary case deliberation and selection are key to success with ASD. Pre-operative airway modeling allows proper suture placement to optimally address the underlying airway collapse.
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