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首页> 外文期刊>Frontiers in Cell and Developmental Biology >3D Printed Biomimetic PCL Scaffold as Framework Interspersed With Collagen for Long Segment Tracheal Replacement
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3D Printed Biomimetic PCL Scaffold as Framework Interspersed With Collagen for Long Segment Tracheal Replacement

机译:3D印刷的生物摩托的PCL脚手架作为骨架散布着长段气管替代的胶原蛋白

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摘要

The rapid development of tissue engineering technology has provided new methods for tracheal replacement. However, none of the previously developed biomimetic tracheas exhibit both the anatomy (separated-ring structure) and mechanical behavior (radial rigidity and longitudinal flexibility) mimicking those of native trachea, which greatly restricts their clinical application. Herein, we propose a biomimetic scaffold with a separated-ring structure: a polycaprolactone (PCL) scaffold with a ring-hollow alternating structure was three-dimensionally-printed as a framework, and collagen sponge was embedded in the hollows amid the PCL rings by pouring followed by lyophilization. The biomimetic scaffold exhibited bionic radial rigidity based on compressive tests and longitudinal flexibility based on three-point bending tests. Furthermore, the biomimetic scaffold was recolonized by chondrocytes and developed tracheal cartilage in vitro. In vivo experiments showed substantial deposition of tracheal cartilage and formation of a biomimetic trachea mimicking the native trachea both structurally and mechanically. Finally, a long-segment tracheal replacement experiment in a rabbit model showed that the engineered biomimetic trachea elicited a satisfactory repair outcome. These results highlight the advantage of a biomimetic trachea with a separated-ring structure that mimics the native trachea both structurally and mechanically and demonstrates its promise in repairing long-segment tracheal defects.
机译:组织工程技术的快速发展为气管置换提供了新的方法。然而,先前开发的生物摩擦转录中没有任何一种解剖结构(分离环结构)和机械行为(径向刚度和纵向柔韧性),其模仿原生气管的纵向气管,这极大地限制了它们的临床应用。在此,我们提出了具有分离环结构的仿生支架:具有环中空交变结构的多己内酯(PCL)支架是三维印刷的,作为框架,并且在PCL环中嵌入中空中的胶原海绵中浇注后面是冻干。基于三点弯曲试验,基于压缩试验和纵向柔韧性,仿生支架表现出仿生径向刚性。此外,仿生支架通过软骨细胞重新播放并在体外产生气管软骨。体内实验表明,在结构和机械上形成天气管软骨的大量沉积和形成模拟天然气管的生物微米气管。最后,兔模型中的长段气管替代实验表明,工程化的生物菊素气囊引发了令人满意的修复结果。这些结果突出了生物菊素气囊的优点,具有分离环结构,其在结构和机械上模仿天然气管,并证明其在修复长段气管缺陷方面的承诺。

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