Wu Yang, Wong Yoke San, Fuh Jerry Ying Hsi
Department of Mechanical Engineering, National University of Singapore, Singapore, 117576, Singapore.
National University of Singapore (Suzhou) Research Institute, Suzhou Industrial Park, Suzhou, 215123, People's Republic of China.
J Biomed Mater Res A. 2017 Apr;105(4):1138-1149. doi: 10.1002/jbm.a.35966. Epub 2017 Feb 8.
A three-dimensional (3D) scaffold fabricated via electrohydrodynamic jet printing (E-jetting) and thermally uniaxial stretching, has been developed for tendon tissue regeneration in our previous study. In this study, more in-depth biological test showed that the aligned cell morphology guided by the anisotropic geometries of the 3D tendon scaffolds, leading to up-regulated tendious gene expression including collagen type I, decorin, tenascin-C, and biglycan, as compared to the electrospun scaffolds. Given the importance of geometric cues to the biological function of the scaffolds, the degradation behaviors of the 3D scaffolds were investigated. Results from accelerated hydrolysis showed that the E-jetted portion followed bulk-controlled erosion, while the unaixially stretched portion followed surface-controlled erosion. The 3D tendon scaffold exhibited consistency between the weight loss and the decline of mechanical properties, which indicated by a 65% decrease in mass with a corresponding 56% loss in ultimate tensile strength after degradation. This study not only reveals that the anisotropic geometries of 3D tendon scaffold could affect cell morphology and lead to desired gene expression toward tendon tissue but also gives an insight into how the degradation impacts geometric cues and mechanical properties of the as-fabricated scaffold. © 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 105A: 1138-1149, 2017.
在我们之前的研究中,已经开发出一种通过电流体动力学喷射打印(E-喷射)和热单轴拉伸制造的三维(3D)支架,用于肌腱组织再生。在本研究中,更深入的生物学测试表明,3D肌腱支架的各向异性几何形状引导细胞呈排列形态,与电纺支架相比,导致肌腱相关基因表达上调,包括I型胶原蛋白、核心蛋白聚糖、腱生蛋白-C和双糖链蛋白聚糖。鉴于几何线索对支架生物学功能的重要性,对3D支架的降解行为进行了研究。加速水解的结果表明,E-喷射部分遵循本体控制侵蚀,而单轴拉伸部分遵循表面控制侵蚀。3D肌腱支架在重量损失和力学性能下降之间表现出一致性,降解后质量下降65%,极限拉伸强度相应损失56%即表明了这一点。本研究不仅揭示了3D肌腱支架的各向异性几何形状可影响细胞形态并导致向肌腱组织的期望基因表达,还深入了解了降解如何影响所制造支架的几何线索和力学性能。© 2017威利期刊公司。《生物医学材料研究杂志》A部分:105A:1138 - 1149,2017年。