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使用3D打印技术制造组织工程化鼓膜贴片

Fabrication of tissue-engineered tympanic membrane patches using 3D-Printing technology.

作者信息

Ilhan Elif, Ulag Songul, Sahin Ali, Yilmaz Betul Karademir, Ekren Nazmi, Kilic Osman, Sengor Mustafa, Kalaskar Deepak M, Oktar Faik Nuzhet, Gunduz Oguzhan

机构信息

Center for Nanotechnology & Biomaterials Application and Research (NBUAM), Marmara University, Turkey; Department of Bioengineering, Faculty of Engineering, Marmara University, 38000, 34722, Turkey.

Center for Nanotechnology & Biomaterials Application and Research (NBUAM), Marmara University, Turkey; Department of Metallurgical and Materials Engineering, Faculty of Technology, Marmara University, Turkey.

出版信息

J Mech Behav Biomed Mater. 2021 Feb;114:104219. doi: 10.1016/j.jmbbm.2020.104219. Epub 2020 Dec 2.

Abstract

In recent years, scaffolds produced in 3D printing technology have become more widespread tool due to providing more advantages than traditional methods in tissue engineering applications. In this research, it was aimed to produce patches for the treatment of tympanic membrane perforations which caused significant hearing loss by using 3D printing method. Polylactic acid(PLA) scaffolds with Chitosan(CS) and Sodium Alginate(SA) added in various ratios were prepared for artificial eardrum patches. Different amounts of chitosan and sodium alginate added to PLA increased the biocompatibility of the produced scaffolds. The created patches were designed by mimicking the thickness of the natural tympanic membrane thanks to the precision provided by the 3D printed method. The produced scaffolds were analyzed separately for chemical, morphological, mechanical and biocompatibility properties. Scanning electron microscope (SEM), Fourier-transform infrared (FT-IR) spectroscopy was performed to observe the surface morphology and chemical structure of the scaffolds. Mechanical, thermal and physical properties, swelling and degradation behaviors were examined to fully analyze whole characteristic features of the samples. Cell culture study was also performed to demonstrate the biocompatibility properties of the fabricated scaffolds with human adipose tissue-derived mesenchymal stem cells (hAD-MSCs). 15 wt % PLA was selected as the control group and among all concentrations of CS and SA, groups containing 3 wt% CS and 3 wt% SA showed significantly superior and favorable features in printing quality. The research continued with these two scaffolds (3 wt% CS, and 3 wt% SA), which showed improved print quality when added to PLA. Overall, these results show that PLA/CS and PLA/SA 3D printed artificial patches have the potential to tissue engineering solutions to repair tympanic membrane perforation for people with hearing loss.

摘要

近年来,由于在组织工程应用中比传统方法具有更多优势,通过3D打印技术生产的支架已成为更广泛使用的工具。在本研究中,旨在使用3D打印方法生产用于治疗导致严重听力损失的鼓膜穿孔的贴片。制备了添加不同比例壳聚糖(CS)和海藻酸钠(SA)的聚乳酸(PLA)支架作为人工耳膜贴片。添加到PLA中的不同量的壳聚糖和海藻酸钠提高了所生产支架的生物相容性。借助3D打印方法提供的精度,通过模仿天然鼓膜的厚度来设计所创建的贴片。分别对所生产的支架的化学、形态、机械和生物相容性特性进行分析。进行扫描电子显微镜(SEM)、傅里叶变换红外(FT-IR)光谱分析以观察支架的表面形态和化学结构。检查机械、热和物理性能、膨胀和降解行为以全面分析样品的整体特征。还进行了细胞培养研究以证明所制造的支架与人脂肪组织来源的间充质干细胞(hAD-MSCs)的生物相容性特性。选择15 wt% 的PLA作为对照组,在所有CS和SA浓度中,含有3 wt% CS和3 wt% SA的组在打印质量方面表现出明显优越和良好的特性。该研究继续使用这两种支架(3 wt% CS和3 wt% SA),它们添加到PLA中时打印质量有所提高。总体而言,这些结果表明,PLA/CS和PLA/SA 3D打印的人工贴片有可能为听力损失患者修复鼓膜穿孔提供组织工程解决方案。

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