School of Mechanical, Medical & Process Engineering, Centre for Biomedical Technologies, Queensland University of Technology, Brisbane, Australia.
School of Chemical Engineering, University of Queensland, St. Lucia, Australia.
Biofabrication. 2022 Apr 20;14(3). doi: 10.1088/1758-5090/ac63ef.
Tissue biomanufacturing aims to produce lab-grown stem cell grafts and biomimetic drug testing platforms but remains limited in its ability to recapitulate native tissue mechanics. The emerging field of soft robotics aims to emulate dynamic physiological locomotion, representing an ideal approach to recapitulate physiologically complex mechanical stimuli and enhance patient-specific tissue maturation. The kneecap's femoropopliteal artery (FPA) represents a highly flexible tissue across multiple axes during blood flow, walking, standing, and crouching positions, and these complex biomechanics are implicated in the FPA's frequent presentation of peripheral artery disease. We developed a soft pneumatically actuated (SPA) cell culture platform to investigate how patient-specific FPA mechanics affect lab-grown arterial tissues. Silicone hyperelastomers were screened for flexibility and biocompatibility, then additively manufactured into SPAs using a simulation-based design workflow to mimic normal and diseased FPA extensions in radial, angular, and longitudinal dimensions. SPA culture platforms were seeded with mesenchymal stem cells, connected to a pneumatic controller, and provided with 24 h multi-axial exercise schedules to demonstrate the effect of dynamic conditioning on cell alignment, collagen production, and muscle differentiation without additional growth factors. Soft robotic bioreactors are promising platforms for recapitulating patient-, disease-, and lifestyle-specific mechanobiology for understanding disease, treatment simulations, and lab-grown tissue grafts.
组织生物制造旨在生产实验室培养的干细胞移植物和仿生药物测试平台,但在再现天然组织力学方面的能力仍然有限。新兴的软机器人领域旨在模拟动态生理运动,这是再现生理复杂机械刺激和增强患者特异性组织成熟的理想方法。髌骨的股浅动脉 (FPA) 在血流、行走、站立和下蹲位置期间在多个轴线上代表一种高度灵活的组织,这些复杂的生物力学与 FPA 外周动脉疾病的频繁发生有关。我们开发了一种软气动驱动 (SPA) 细胞培养平台,以研究患者特异性 FPA 力学如何影响实验室培养的动脉组织。筛选了硅酮超弹性体的柔韧性和生物相容性,然后使用基于模拟的设计工作流程将其添加制造为 SPA,以模拟正常和患病 FPA 在径向、角度和纵向尺寸上的延伸。将间充质干细胞接种到 SPA 培养平台上,连接到气动控制器,并提供 24 小时多轴运动时间表,以证明动态调节对细胞排列、胶原蛋白产生和肌肉分化的影响,而无需额外的生长因子。软机器人生物反应器是再现患者、疾病和生活方式特异性机械生物学的有前途的平台,可用于了解疾病、治疗模拟和实验室培养的组织移植物。