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A novel knitted scaffold made of microfiber/nanofiber core-sheath yarns for tendon tissue engineering

机译:一种用于肌腱组织工程的微纤维/纳米纤维芯鞘纱线制成的新型针织脚手架

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摘要

Tendon injury is common in sports and other rigorous activities, which may result in dysfunction and disability. Recently, scaffolds with a knitted structure have been widely applied for tendon tissue engineering. The purpose of this study was to fabricate a novel knitted tendon scaffold made of microfiber/nanofiber core-sheath yarns and evaluate the biocompatibility and the effect of tenogenic differentiation and tendon tissue regeneration in vitro and in vivo. Poly(e-caprolactone) (PCL) microfibers, PCL microfibers-PCL nanofibers (PCL-PCL) and PCL microfiber-silk fibroin/poly(L-lactic acid-co-e-caprolactone) nanofiber (SF/PLCL) core-sheath yarns were fabricated and then knitted with an automatic knitting machine to produce PCL, PCL-PCL and PCL-SF/PLCL fabric scaffolds. The characterization of the scaffolds was performed by using scanning electron microscopy, attenuated total reflectance Fourier transform infrared spectroscopy and an universal mechanical instrument. The in vitro experiment showed that rabbit bone marrow stem cells seeded on the scaffolds exhibited an elongated morphology and proliferated better in the PCL-SF/PLCL group, as compared to the PCL and PCL-PCL groups. Moreover, the PCL-SF/PLCL scaffold promoted the tenogenic differentiation of the cells for the highest expression levels of the tendon-related genes through down-regulating p-ERK1/2 expression among the three groups. Furthermore, the in vivo study in a rabbit patellar defect model demonstrated that the PCL-SF/PLCL scaffold could enhance the tissue regeneration and remodeling process as indicated by the better structural and biomechanical properties according to the results of histology, immunohistochemistry, transmission electron microscope examination and biomechanical tests. Therefore, the PCL-SF/PLCL scaffold is proved to be a promising biomaterial for tendon tissue engineering and a potential candidate for clinical treatment of tendon injury in the future.
机译:肌腱损伤是体育和其他严格活动中的常见,这可能导致功能障碍和残疾。最近,具有针织结构的支架已被广泛应用于肌腱组织工程。本研究的目的是制造由微纤维/纳米纤维芯鞘纱线制成的新型针织肌腱支架,并评估体外和体内遗传分化和肌腱组织再生的生物相容性和效果。聚(E-己内酯)(PCL)微纤维,PCL微纤维-PCL纳米纤维(PCL-PCL)和PCL微纤维 - 丝纤维蛋白/聚(L-乳酸 - CO-E-己内酯)纳米纤维(SF / PLCL)芯护套制造纱线,然后用自动针织机编织,以生产PCL,PCL-PCL和PCL-SF / PLCL织物支架。通过使用扫描电子显微镜进行支架的表征,衰减总反射率傅里叶变换红外光谱和通用机械仪器。体外实验表明,与PCL和PCL-PCL基团相比,在支架上播种在支架上的兔骨髓干细胞在PCL-SF / PLCL组中表现出细长的形态并更好地增殖。此外,PCL-SF / PLCL支架通过在三组中的下调P-ERK1 / 2表达,促进了细胞对肌腱相关基因的最高表达水平的胎生分化。此外,在兔髌骨缺陷模型中的体内研究表明,PCL-SF / PLCL支架可以根据组织学,免疫组化,透射电子显微镜的结果,通过更好的结构和生物力学性能提高组织再生和重塑过程检查和生物力学测试。因此,证明PCL-SF / PLCL支架是肌腱组织工程的有希望的生物材料,以及未来肌腱损伤的临床治疗潜在候选者。

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    《Biomaterials Science》 |2020年第16期|共13页
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  • 正文语种 eng
  • 中图分类 分子生物学;
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  • 入库时间 2022-08-19 22:55:56

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