4D 生物打印自折叠支架在气管工程中促进软骨形成

IF 6.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Irene Chiesa, Alessio Esposito, Giovanni Vozzi, Riccardo Gottardi, Carmelo De Maria
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引用次数: 0

摘要

4D生物打印是一种尖端的方法,用于制造活性支架,这些支架能够在应用环境刺激后以预定的方式形成-变形,从而能够模仿天然组织的动态。本研究利用4D生物打印技术开发了一种用于气管工程的自折叠明胶双层支架。从二维平面结构开始,水化后,支架自动形成封闭的管状结构。基于Timoshenko的梁恒温器,开发并验证了一个分析模型来预测脚手架的曲率半径。用气道成纤维细胞、肺内皮细胞和软骨祖细胞(cpc)对4D生物打印结构进行测试,以实现组织工程气管的发育。细胞被播种在支架的初始平面结构上,在支架驱动后保持其位置,并在支架上或内部增殖。评估了CPCs向成熟软骨分化的能力。有趣的是,实时PCR显示,与在2D静态平面支架上培养的cpc相比,在4D生物打印支架上分化cpc可以促进更健康的软骨形成。因此,CPCs可以感知支架折叠及其最终曲率,并对其作出反应,从而形成成熟的气道软骨。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

4D Bioprinted Self-Folding Scaffolds Enhance Cartilage Formation in the Engineering of Trachea

4D Bioprinted Self-Folding Scaffolds Enhance Cartilage Formation in the Engineering of Trachea

4D bioprinting is a cutting-edge approach for manufacturing active scaffolds able to shape-morph in a predefined way after the application of an environmental stimulus, thus enabling to mimic the dynamics of native tissues. This study develops a self-folding gelatin-based bilayer scaffold for trachea engineering exploiting the 4D bioprinting approach. Starting from a 2D flat configuration, upon hydration, the scaffold automatically forms a closed tubular structure. An analytical model, based on Timoshenko's beam thermostats, is developed and validated to predict the radius of curvature of the scaffold. The 4D bioprinted structure is tested with airway fibroblast, lung endothelial cells, and cartilage progenitor cells (CPCs) toward the development of a tissue-engineered trachea. Cells are seeded on the scaffold in its initial flat configuration, maintain their position after the scaffold actuation, and proliferate over or inside it. The ability of CPCs to differentiate toward mature cartilage is evaluated. Interestingly, real-time PCR reveals that differentiating CPCs on the 4D bioprinted scaffold promotes healthier cartilage formation, if compared with CPCs cultured on 2D static flat scaffold. Thus, CPCs can perceive scaffold folding and its final curvature and react to it, toward the formation of mature cartilage for the airway.

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来源期刊
Advanced Materials Technologies
Advanced Materials Technologies Materials Science-General Materials Science
CiteScore
10.20
自引率
4.40%
发文量
566
期刊介绍: Advanced Materials Technologies Advanced Materials Technologies is the new home for all technology-related materials applications research, with particular focus on advanced device design, fabrication and integration, as well as new technologies based on novel materials. It bridges the gap between fundamental laboratory research and industry.
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