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Updated: May 24, 2025

Seeding and Implantation of a Biosynthetic Tissue-engineered Tracheal Graft in a Mouse Model
Published on: April 1, 2019
Lessons Learned From Various 3D-Printed Tracheal Grafts in an Extensive Porcine Model for De Novo Tracheal
Sen-Ei Shai1, Yi-Ling Lai2, Yi-Wen Hung3
1Department of Thoracic Surgery, Taichung Veterans General Hospital, Taichung, Taiwan; Department of Applied Chemistry, National Chi Nan University, Nantou, Taiwan; Institute of Clinical Medicine, National Yang-Ming Chiao-Tung University, Taipei, Taiwan.
Background:
Tracheal implants using tissue engineering and 3-dimensional printing are promising, but challenges remain, including graft composition, anastomosis methods, and tracheal tissue regeneration. This study examined the effectiveness of various tracheal graft materials in a large animal model.
Methods:
A total of 38 operations were performed on a porcine large animal model, involving a 2-cm circumferential tracheal excision with end-to-end anastomosis. The grafts used included translucent plastic material crystal (n = 16), silicone (n = 8), and polycaprolactone (PCL; n = 8). Nonabsorbable (n = 28) or absorbable (n = 4) sutures were applied, and 2 animals underwent modified distal trachea anchoring using the strap muscle. Bronchoscopy and laser ablation were used to assess granulation tissue and graft patency in select cases. Postoperative complications, survival rates, and tissue regeneration outcomes were tracked.
Results:
Operation times ranged from 91 to 126 minutes. Animals survived between 5 and 92 days, with 29 experiencing complications such as abdominal distress (n = 15) and granulation tissue formation (n = 18) after 7 days. Postoperative issues included wound infection (n = 16), graft infection (n = 7), and necrosis (n = 14). Histologic examination revealed regenerating tissue with chondrogenesis (n = 8), adipogenesis (n = 9), myogenesis (n = 9), angiogenesis (n = 6), glandogenesis (n = 2), and epithelialization (n = 2). Two PCL graft recipients with strap muscle reinforcement survived longer, gaining 101 kg, with 1 animal showing heterotopic ossification.
Conclusions:
This study highlights critical insights into graft material selection and integration with native tissue. PCL grafts demonstrated improved integration and tissue healing with biodegradable properties, findings supporting their potential for clinical use in tracheal implants.
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