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Electrospun Core-Shell Bioadhesive Nanofiber Sheets Enable Durable Pulmonary Air Leak Sealing Under Wet and Dynamic
Tomohito Okubo1, Kouji Hara2,3, Naoyuki Hatayama1
1Department of Anatomy, Aichi Medical University, Nagakute, Aichi, Japan.
Abstract:
Pulmonary air leak is the most common complication following lung surgery. Most materials used for pulmonary fistula closure rely on fibrin network-mediated adhesion. However, on the moist and dynamically deforming lung surface, these materials often fail to provide sufficient adhesion, and postoperative air leaks remain a major clinical concern. Since these materials are biologically derived, concerns regarding biosafety risks and high production costs persist. To address these limitations, this study develops a novel closure material that integrates biocompatibility, pressure resistance, tissue adhesion, and seal retention under wet conditions. The closure material is fabricated as a nanofiber sheet via electrospinning. Comparative evaluation of different structural designs demonstrates that incorporating a core-shell nanofiber structure achieves a favorable balance of pressure resistance, tissue adhesion, and seal retention under wet conditions. Acute leak closure was evaluated in five animals, and long-term safety was assessed in three animals followed for 1 month. The mean air leak volume decreased from 46.2 to 1.8 mL/min, with post-treatment air leak volumes below the clinically accepted threshold (≤ 10 mL/min) in all five animals. No treatment-related complications were observed during the follow-up period. Thus, electrospun nanofiber sheets represent a promising and biosafe approach for pulmonary air leak closure.
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