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3-Dimensional porous nanocomposite scaffolds based on cellulose nanofibers for cartilage tissue engineering: tailoring of porosity and mechanical performance

机译:基于纤维素纳米纤维的三维多孔纳米复合支架用于软骨组织工程:粉末剪裁和机械性能

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Fully bio-based 3-dimensional porous scaffolds based on freeze-dried cellulose nanofibers (70–90 wt%) stabilized using a genipin crosslinked matrix of gelatin and chitosan were prepared. Morphology studies using scanning electron microscopy showed that the scaffolds have interconnected pores with average pore diameters of 75–200 μm and nanoscaled pore wall roughness, both favorable for cell interactions with cartilage repair. X-ray tomography confirmed the 3-dimensional homogeneity and interconnectivity of the pores as well as the fibrillar structure of the scaffolds. The compression modulus of the scaffolds (1–3 MPa) at room conditions was higher than natural cartilage (≈1 MPa). The lowered compression modulus of 10–60 kPa in phosphate buffered saline (PBS) at 37 °C was considered favorable for chondrogenesis. The current study therefore successfully addressed the challenge of tailoring the pore structure and mechanical properties simultaneously for cartilage regeneration. Furthermore, the scaffolds' high porosity (≈95%), high PBS uptake and good cytocompatibility towards chondrocytes are considered beneficial for cell attachment and extracellular matrix (ECM) production.
机译:制备使用基于冷冻干燥的纤维素纳米纤维(70-90wt%)使用Genipin交联基质的明胶和壳聚糖稳定的完全生物的三维多孔支架。使用扫描电子显微镜的形态学研究表明,支架具有相互连接的孔,其平均孔径为75-200μm,纳米级孔隙壁粗糙度,既有利于与软骨修复的细胞相互作用。 X射线断层扫描证实了孔隙的三维均匀性和互连性,以及支架的纤维结构。在室内条件下支架(1-3MPa)的压缩模量高于天然软骨(≈1MPa)。在37℃下磷酸盐缓冲盐水(PBS)在37℃下的降低的压缩模量被认为有利于软骨发生。因此,目前的研究成功地解决了对软骨再生同时定制孔隙结构和机械性能的挑战。此外,支架的高孔隙率(≈95%),高PBS吸收和对软骨细胞的良好细胞相容性被认为是有益的细胞附着和细胞外基质(ECM)的生产。

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