Gustin Paula, Prasad Anamika
Department of Biomedical Engineering, Florida International University, Miami, FL, United States.
Department of Mechanical and Materials Engineering, Florida International University, Miami, FL, United States.
HardwareX. 2024 Apr 18;18:e00535. doi: 10.1016/j.ohx.2024.e00535. eCollection 2024 Jun.
Studies of the effects of external stimuli on bone tissue, disease transmission mechanisms, and potential medication discoveries benefit from long-term tissue viability ex vivo. By simulating the in-vivo environment, bioreactors are essential for studying bone cellular activity throughout biological processes. We present the development of an automated 3D-printed bioreactor EnduroBone designed to sustain the ex-vivo viability of 10 mm diameter cancellous bone cores for an extended period. The device is supplied with two critical parameters for maintaining bone tissue viability: closed-loop continuous flow perfusion of 1 mL/min for nutrient diffusion and waste removal and direct mechanical stimulation with cyclic compression at 13.2 RPM (revolutions per minute) to promote cell viability which can lead to improved tissue stability during ex vivo culturing. The bioreactor addresses several limitations of existing systems and provides a versatile open-source platform for bone cancer research, orthopedic device testing, and other related applications. To validate the bioreactor, fresh swine samples were cultured ex-vivo, and their cell viability was determined to be maintained for up to 28 days. Periodic cell viability assessment through live/dead cell staining and confocal imaging at the start (0 days) and at several time points throughout the culture period (7, 14, 21, and 28 days) was used to demonstrate effectiveness in sustaining bone cell health for the extended period tested.
对骨组织的外部刺激影响、疾病传播机制以及潜在药物发现的研究,受益于离体长期组织活力。通过模拟体内环境,生物反应器对于研究整个生物过程中的骨细胞活性至关重要。我们展示了一种自动化3D打印生物反应器EnduroBone的开发,该反应器旨在长时间维持直径10毫米的松质骨核心的离体活力。该设备具备维持骨组织活力的两个关键参数:以1毫升/分钟的闭环连续流动灌注用于营养物质扩散和废物清除,以及以每分钟13.2转的循环压缩进行直接机械刺激以促进细胞活力,这可导致在离体培养期间提高组织稳定性。该生物反应器解决了现有系统的几个局限性,并为骨癌研究、骨科器械测试及其他相关应用提供了一个通用的开源平台。为验证该生物反应器,对新鲜猪样本进行了离体培养,并确定其细胞活力可维持长达28天。在培养期开始时(0天)以及整个培养期的几个时间点(7天、14天、21天和28天),通过活/死细胞染色和共聚焦成像进行定期细胞活力评估,以证明在测试的延长时间段内维持骨细胞健康的有效性。