Decellularization compromises mechanical and structural properties of the native trachea

Q3 Biochemistry, Genetics and Molecular Biology Biomaterials and biosystems Pub Date : 2023-03-01 DOI:10.1016/j.bbiosy.2023.100074
Allison M. Greaney , Abhay B. Ramachandra , Yifan Yuan , Arina Korneva , Jay D. Humphrey , Laura E. Niklason
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引用次数: 2

Abstract

Tracheal replacement using tissue engineering technologies offers great potential to improve previously intractable clinical interventions, and interest in this area has increased in recent years. Many engineered airway constructs currently rely on decellularized native tracheas to serve as the scaffold for tissue repair. Yet, mechanical failure leading to airway narrowing and collapse remains a major cause of morbidity and mortality following clinical implantation of decellularized tracheal grafts. To understand better the factors contributing to mechanical failure in vivo, we characterized the histo-mechanical properties of tracheas following two different decellularization protocols, including one that has been used clinically. All decellularized tracheas deviated from native mechanical behavior, which may provide insights into observed in vivo graft failures. We further analyzed protein content by western blot and analyzed microstructure by histological staining and found that the specific method of decellularization resulted in significant differences in the depletion of proteoglycans and degradation of collagens I, II, III, and elastin. Taken together, this work demonstrates that the heterogeneous architecture and mechanical behavior of the trachea is severely compromised by decellularization. Such structural deterioration may contribute to graft failure clinically and limit the potential of decellularized native tracheas as viable long-term orthotopic airway replacements.

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脱细胞损害了天然气管的机械和结构特性。
使用组织工程技术的气管置换术为改善以前难以解决的临床干预措施提供了巨大的潜力,近年来人们对这一领域的兴趣有所增加。目前,许多工程化气道结构依赖于脱细胞的天然气管作为组织修复的支架。然而,导致气道狭窄和塌陷的机械故障仍然是临床植入脱细胞气管移植物后发病率和死亡率的主要原因。为了更好地了解导致体内机械故障的因素,我们根据两种不同的脱细胞方案(包括一种已在临床上使用的方案)对气管的组织力学特性进行了表征。所有脱细胞气管都偏离了固有的力学行为,这可能为观察到的体内移植物失败提供了见解。我们通过蛋白质印迹进一步分析了蛋白质含量,并通过组织学染色分析了微观结构,发现脱细胞的特定方法导致蛋白多糖的耗竭和胶原蛋白I、II、III和弹性蛋白的降解存在显著差异。总之,这项工作表明,气管的异质结构和机械行为会因脱细胞而严重受损。这种结构恶化可能导致临床移植物衰竭,并限制脱细胞天然气管作为可行的长期原位气道替代物的潜力。
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4.10
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审稿时长
25 days
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