Orthopaedic Biomechanics, Department of Biomedical Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands.
Institute for Complex Molecular Systems, Eindhoven University of Technology, Eindhoven, The Netherlands.
Biotechnol Bioeng. 2023 Jul;120(7):2013-2026. doi: 10.1002/bit.28418. Epub 2023 May 6.
The transition in the field of bone tissue engineering from bone regeneration to in vitro models has come with the challenge of recreating a dense and anisotropic bone-like extracellular matrix (ECM). Although the mechanism by which bone ECM gains its structure is not fully understood, mechanical loading and curvature have been identified as potential contributors. Here, guided by computational simulations, we evaluated cell and bone-like tissue growth and organization in a concave channel with and without directional fluid flow stimulation. Human mesenchymal stromal cells were seeded on donut-shaped silk fibroin scaffolds and osteogenically stimulated for 42 days statically or in a flow perfusion bioreactor. After 14, 28, and 42 days, constructs were investigated for cell and tissue growth and organization. As a result, directional fluid flow was able to improve organic tissue growth but not organization. Cells tended to orient in the tangential direction of the channel, possibly attributed to its curvature. Based on our results, we suggest that organic ECM production but not anisotropy can be stimulated through the application of fluid flow. With this study, an initial attempt in three-dimensions was made to improve the resemblance of in vitro produced bone-like ECM to the physiological bone ECM.
从骨组织工程的骨再生领域向体外模型的转变带来了一个挑战,即需要重新创建一个致密且各向异性的类似骨的细胞外基质 (ECM)。尽管骨 ECM 获得其结构的机制尚未完全理解,但已经确定机械负载和曲率是潜在的促成因素。在这里,我们通过计算模拟评估了在具有和不具有定向流体流动刺激的凹形通道中细胞和类似骨组织的生长和组织。将人骨髓基质细胞接种在甜甜圈形状的丝素蛋白支架上,并在静态或流动灌注生物反应器中进行成骨刺激 42 天。在第 14、28 和 42 天,对构建体进行了细胞和组织生长和组织的研究。结果表明,定向流体流动能够改善有机组织的生长,但不能改善组织的定向性。细胞倾向于沿通道的切向方向排列,这可能归因于其曲率。基于我们的结果,我们建议可以通过应用流体流动来刺激有机 ECM 的产生,但不能刺激各向异性。通过这项研究,我们首次尝试在三维空间中提高体外产生的类似骨 ECM 与生理骨 ECM 的相似性。