Ladner Yann D, Kasper Hermann, Armiento Angela R, Stoddart Martin J
AO Research Institute Davos, Clavadelerstrasse 8, 7270 Davos Platz, Switzerland.
Institute for Biomechanics, ETH Zurich, Lengghalde 5, CH-8008 Zurich, Switzerland.
iScience. 2023 Jun 9;26(7):107092. doi: 10.1016/j.isci.2023.107092. eCollection 2023 Jul 21.
Cartilage tissue engineering necessitates the right mechanical cues to regenerate impaired tissue. For this reason, bioreactors can be employed to induce joint-relevant mechanical loading, such as compression and shear. However, current articulating joint bioreactor designs are lacking in terms of sample size and usability. In this paper, we describe a new, simple-to-build and operate, multi-well kinematic load bioreactor and investigate its effect on the chondrogenic differentiation of human bone marrow-derived stem cells (MSCs). We seeded MSCs into a fibrin-polyurethane scaffold and subsequently exposed the samples to a combination of compression and shear for 25 days. The mechanical loading activates transforming growth factor beta 1, upregulates chondrogenic genes, and increases sulfated glycosaminoglycan retention within the scaffolds. Such a higher-throughput bioreactor could be operated in most cell culture laboratories, dramatically accelerating and improving the testing of cells, new biomaterials, and tissue-engineered constructs.
软骨组织工程需要合适的机械信号来再生受损组织。因此,生物反应器可用于诱导与关节相关的机械负荷,如压缩和剪切。然而,目前的关节生物反应器设计在样本量和可用性方面存在不足。在本文中,我们描述了一种新型、易于构建和操作的多孔运动负荷生物反应器,并研究了其对人骨髓来源干细胞(MSC)软骨形成分化的影响。我们将MSC接种到纤维蛋白-聚氨酯支架中,随后将样本暴露于压缩和剪切组合作用下25天。机械负荷激活转化生长因子β1,上调软骨形成基因,并增加支架内硫酸化糖胺聚糖的保留。这种高通量生物反应器可在大多数细胞培养实验室中操作,极大地加速和改进对细胞、新型生物材料和组织工程构建体的测试。