Chemical Engineering Department, Northeastern University.
Bioengineering Department, Northeastern University.
J Vis Exp. 2024 Jul 19(209). doi: 10.3791/67081.
We present an innovative in vitro model aimed at investigating the combined effects of tissue rigidity and shear stress on endothelial cell (EC) function, which are crucial for understanding vascular health and the onset of diseases such as atherosclerosis. Traditionally, studies have explored the impacts of shear stress and substrate stiffness on ECs, independently. However, this integrated system combines these factors to provide a more precise simulation of the mechanical environment of the vasculature. The objective is to examine EC mechanotransduction across various tissue stiffness levels and flow conditions using human ECs. We detail the protocol for synthesizing gelatin methacrylate (GelMA) hydrogels with tunable stiffness and seeding them with ECs to achieve confluency. Additionally, we describe the design and assembly of a cost-effective flow chamber, supplemented by computational fluid dynamics simulations, to generate physiological flow conditions characterized by laminar flow and appropriate shear stress levels. The protocol also incorporates fluorescence labeling for confocal microscopy, enabling the assessment of EC responses to both tissue compliance and flow conditions. By subjecting cultured ECs to multiple integrated mechanical stimuli, this model enables comprehensive investigations into how factors such as hypertension and aging may affect EC function and EC-mediated vascular diseases. The insights gained from these investigations will be instrumental in elucidating the mechanisms underlying vascular diseases and in developing effective treatment strategies.
我们提出了一种创新的体外模型,旨在研究组织刚性和切应力对血管内皮细胞(EC)功能的综合影响,这对于理解血管健康和动脉粥样硬化等疾病的发生至关重要。传统上,研究独立地探索了切应力和基质刚度对 EC 的影响。然而,这个集成系统将这些因素结合起来,为血管的力学环境提供了更精确的模拟。该模型的目的是使用人 EC 研究在不同组织硬度水平和流动条件下的 EC 机械转导。我们详细介绍了合成具有可调硬度的明胶甲基丙烯酰(GelMA)水凝胶的方案,并将其与 EC 一起播种以达到汇合。此外,我们描述了一种经济高效的流动室的设计和组装,补充了计算流体动力学模拟,以产生具有层流和适当切应力水平的生理流动条件。该方案还纳入了用于共聚焦显微镜的荧光标记,能够评估 EC 对组织顺应性和流动条件的反应。通过使培养的 EC 受到多种综合机械刺激,该模型能够全面研究高血压和衰老等因素如何影响 EC 功能和 EC 介导的血管疾病。这些研究的结果对于阐明血管疾病的机制以及开发有效的治疗策略将是非常有帮助的。