Adolphe Merkle Institute, University of Fribourg, Chemin des Verdiers 4, 1700 Fribourg, Switzerland.
Adolphe Merkle Institute, University of Fribourg, Chemin des Verdiers 4, 1700 Fribourg, Switzerland.
Biomaterials. 2016 Jan;74:42-52. doi: 10.1016/j.biomaterials.2015.09.033. Epub 2015 Sep 28.
Articular cartilage serves as a low-friction cushion in synovial joints and is vital for mammalian skeletal movements. Due to its avascular nature and the low cell density, the tissue has a limited ability to regenerate, and damage due to injury, wear and tear, or disease usually requires surgical intervention. While articular cartilage had been predicted to be one of the first tissues to be successfully engineered, it proved to be challenging to reproduce the complex architecture and biomechanical properties of the native tissue. Here we report the fabrication of multi-layer polymer nanocomposite scaffolds that mimic the structural design, chemical cues, and mechanical characteristics of mature articular cartilage. These scaffolds guide the morphology, orientation, and phenotypic state of cultured chondrocytes in a spatially controlled manner, support the growth of tissue with features that are reminiscent of the natural analogue, and promote localized hydroxyapatite formation to permit integration with the subchondral bone.
关节软骨作为滑膜关节中的低摩擦缓冲垫,对于哺乳动物骨骼运动至关重要。由于其无血管特性和低细胞密度,组织再生能力有限,因此损伤、磨损或疾病引起的损伤通常需要手术干预。尽管关节软骨曾被预测为最早成功进行工程设计的组织之一,但事实证明,要复制天然组织的复杂结构和生物力学特性极具挑战性。在这里,我们报告了多层聚合物纳米复合材料支架的制造,该支架模拟了成熟关节软骨的结构设计、化学线索和机械特性。这些支架以空间控制的方式引导培养的软骨细胞的形态、取向和表型状态,支持具有类似于天然类似物特征的组织生长,并促进局部羟基磷灰石形成,以允许与软骨下骨整合。