PolitoBIOMed Lab, Department of Mechanical and Aerospace Engineering, Politecnico di Torino, Turin, Italy.
Interuniversity Center for the Promotion of the 3Rs Principles in Teaching and Research, Turin, Italy.
Sci Rep. 2022 Aug 16;12(1):13859. doi: 10.1038/s41598-022-18075-1.
In bone tissue engineering research, bioreactors designed for replicating the main features of the complex native environment represent powerful investigation tools. Moreover, when equipped with automation, their use allows reducing user intervention and dependence, increasing reproducibility and the overall quality of the culture process. In this study, an automated uni-/bi-directional perfusion bioreactor combinable with pulsed electromagnetic field (PEMF) stimulation for culturing 3D bone tissue models is proposed. A user-friendly control unit automates the perfusion, minimizing the user dependency. Computational fluid dynamics simulations supported the culture chamber design and allowed the estimation of the shear stress values within the construct. Electromagnetic field simulations demonstrated that, in case of combination with a PEMF stimulator, the construct can be exposed to uniform magnetic fields. Preliminary biological tests on 3D bone tissue models showed that perfusion promotes the release of the early differentiation marker alkaline phosphatase. The histological analysis confirmed that perfusion favors cells to deposit more extracellular matrix (ECM) with respect to the static culture and revealed that bi-directional perfusion better promotes ECM deposition across the construct with respect to uni-directional perfusion. Lastly, the Real-time PCR results of 3D bone tissue models cultured under bi-directional perfusion without and with PEMF stimulation revealed that the only perfusion induced a ~ 40-fold up-regulation of the expression of the osteogenic gene collagen type I with respect to the static control, while a ~ 80-fold up-regulation was measured when perfusion was combined with PEMF stimulation, indicating a positive synergic pro-osteogenic effect of combined physical stimulations.
在骨组织工程研究中,设计用于复制复杂天然环境主要特征的生物反应器代表了强大的研究工具。此外,当配备自动化设备时,它们的使用可以减少用户干预和依赖,提高培养过程的可重复性和整体质量。在这项研究中,提出了一种可与脉冲电磁场(PEMF)刺激结合使用的自动化单向/双向灌注生物反应器,用于培养 3D 骨组织模型。一个用户友好的控制单元自动化了灌注过程,最大限度地减少了用户的依赖性。计算流体动力学模拟支持培养箱的设计,并允许估计构建体内的剪切应力值。电磁场模拟表明,在与 PEMF 刺激器结合使用的情况下,构建体可以暴露于均匀的磁场中。对 3D 骨组织模型的初步生物学测试表明,灌注可促进早期分化标志物碱性磷酸酶的释放。组织学分析证实,与静态培养相比,灌注有利于细胞在构建体中沉积更多的细胞外基质(ECM),并且双向灌注比单向灌注更有利于在构建体中跨区沉积 ECM。最后,在没有和有 PEMF 刺激的双向灌注下培养的 3D 骨组织模型的实时 PCR 结果表明,仅灌注就可以使成骨基因 I 型胶原的表达上调约 40 倍,而在灌注与 PEMF 刺激相结合时,测量到约 80 倍的上调,表明联合物理刺激具有积极的协同成骨作用。