首页> 外文期刊>Tissue engineering, Part C. Methods >Fabrication of electrospun poly(l-Lactide-co-Eε-Caprolactone)/collagen nanoyarn network as a novel, three-dimensional, macroporous, aligned scaffold for tendon tissue engineering
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Fabrication of electrospun poly(l-Lactide-co-Eε-Caprolactone)/collagen nanoyarn network as a novel, three-dimensional, macroporous, aligned scaffold for tendon tissue engineering

机译:电纺聚(l-丙交酯-ε-ε-己内酯)/胶原蛋白纳米纱网络的制备,作为一种新型的三维大孔排列的腱组织工程支架

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摘要

Tissue engineering techniques using novel scaffolding materials offer potential alternatives for managing tendon disorders. An ideal tendon tissue engineered scaffold should mimic the three-dimensional (3D) structure of the natural extracellular matrix (ECM) of the native tendon. Here, we propose a novel electrospun nanoyarn network that is morphologically and structurally similar to the ECM of native tendon tissues. The nanoyarn, random nanofiber, and aligned nanofiber scaffolds of a synthetic biodegradable polymer, poly(l-lactide-co-é-caprolactone) [P(LLA-CL)], and natural collagen I complex were fabricated using electrospinning. These scaffolds were characterized in terms of fiber morphology, pore size, porosity, and chemical and mechanical properties for the purpose of culturing tendon cells (TCs) for tendon tissue engineering. The results indicated a fiber diameter of 632±81 nm for the random nanofiber scaffold, 643±97 nm for the aligned nanofiber scaffold, and 641±68 nm for the nanoyarn scaffold. The yarn in the nanoyarn scaffold was twisted by many nanofibers similar to the structure and inherent nanoscale organization of tendons, indicating an increase in the diameter of 9.51±3.62 μm. The nanoyarn scaffold also contained 3D aligned microstructures with large interconnected pores and high porosity. Fourier transform infrared analyses revealed the presence of collagen in the three scaffolds. The mechanical properties of the sample scaffolds indicated that the scaffolds had desirable mechanical properties for tissue regeneration. Further, the results revealed that TC proliferation and infiltration, and the expression of tendon-related ECM genes, were significantly enhanced on the nanoyarn scaffold compared with that on the random nanofiber and aligned nanofiber scaffolds. This study demonstrates that electrospun P(LLA-CL)/collagen nanoyarn is a novel, 3D, macroporous, aligned scaffold that has potential application in tendon tissue engineering.
机译:使用新型支架材料的组织工程技术为控制肌腱疾病提供了潜在的替代方法。理想的肌腱组织工程支架应模仿天然肌腱的天然细胞外基质(ECM)的三维(3D)结构。在这里,我们提出了一种新型的电纺纳米纱网络,其形态和结构与天然肌腱组织的ECM相似。合成的可生物降解聚合物,聚(l-丙交酯-co-ε-己内酯)[P(LLA-CL)]和天然胶原蛋白I复合物的纳米纱,无规纳米纤维和排列的纳米纤维支架是使用静电纺丝制造的。这些支架的特征在于纤维形态,孔径,孔隙率以及化学和机械性能,目的是为肌腱组织工程培养肌腱细胞(TC)。结果表明,随机纳米纤维支架的纤维直径为632±81nm,对准的纳米纤维支架的纤维直径为643±97nm,纳米纱线支架的纤维直径为641±68nm。纳米纱支架中的纱线被许多纳米纤维扭曲,类似于肌腱的结构和固有的纳米级组织,表明直径增加了9.51±3.62μm。纳米纱线支架还包含3D对齐的微结构,具有大的互连孔和高孔隙率。傅立叶变换红外分析显示在三个支架中存在胶原蛋白。样品支架的机械性能表明支架具有组织再生所需的机械性能。此外,结果表明,与随机纳米纤维和排列的纳米纤维支架相比,纳米纱线支架上的TC增殖和浸润以及与腱相关的ECM基因的表达显着增强。这项研究表明,电纺P(LLA-CL)/胶原蛋白纳米纱是一种新颖的3D,大孔,对齐支架,在肌腱组织工程中具有潜在应用。

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