Department of Cardiothoracic Surgery, University of Iowa Hospitals and Clinics, Iowa City, IA 52242, USA.
Department of Anatomy and Cell Biology, University of Iowa, Iowa City, IA 52242, USA.
Cells. 2022 Mar 18;11(6):1027. doi: 10.3390/cells11061027.
Tracheal grafts introduce the possibility to treat airway pathologies that require resection. While there has been success with engraftment of the surface airway epithelium (SAE) onto decellularized tracheas, there has been minimal advancement in regenerating the submucosal glands (SMGs). We designed a cost-effective open-system perfusion bioreactor to investigate the engraftment potential of ferret SAEs and murine myoepithelial cells (MECs) on a partly decellularized ferret trachea with the goal of creating a fully functional tracheal replacement. An air-liquid interface was also arranged by perfusing humidified air through the lumen of a recellularized conduit to induce differentiation. Our versatile bioreactor design was shown to support the successful partial decellularization and recellularization of ferret tracheas. The decellularized grafts maintained biomechanical integrity and chondrocyte viability, consistent with other publications. The scaffolds supported SAE basal cell engraftment, and early differentiation was observed once an air-liquid interface had been established. Lastly, MEC engraftment was sustained, with evidence of diffuse SMG reconstitution. This model will help shed light on SMG regeneration and basal cell differentiation in vitro for the development of fully functional tracheal grafts before transplantation.
气管移植物为需要切除的气道病变提供了治疗的可能性。虽然将气道表面上皮(SAE)移植到脱细胞气管上已经取得了成功,但在再生黏膜下腺(SMG)方面进展甚微。我们设计了一种具有成本效益的开放式灌注生物反应器,以研究雪貂 SAE 和小鼠肌上皮细胞(MEC)在部分脱细胞雪貂气管上的植入潜力,目的是创建完全功能的气管替代物。通过向再细胞化导管的管腔中灌注加湿空气,还安排了气液界面,以诱导分化。我们的多功能生物反应器设计被证明可以支持雪貂气管的成功部分脱细胞和再细胞化。脱细胞移植物保持了生物力学完整性和软骨细胞活力,与其他出版物一致。支架支持 SAE 基底细胞植入,一旦建立气液界面,就观察到早期分化。最后,MEC 植入得以维持,有弥漫性 SMG 重建的证据。该模型将有助于阐明 SMG 再生和体外基底细胞分化,以便在移植前开发完全功能的气管移植物。