A microfluidic model to study the effects of arrhythmic flows on endothelial cells†

IF 5.4 2区 工程技术 Q1 BIOCHEMICAL RESEARCH METHODS
Lab on a Chip Pub Date : 2024-03-21 DOI:10.1039/D3LC00834G
Austin Lai, Adam Hawke, Mokhaled Mohammed, Peter Thurgood, Gianmarco Concilia, Karlheinz Peter, Khashayar Khoshmanesh and Sara Baratchi
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Abstract

Atrial fibrillation (AF) is the most common type of cardiac arrhythmia and an important contributor to morbidity and mortality. Endothelial dysfunction has been postulated to be an important contributing factor in cardiovascular events in patients with AF. However, how vascular endothelial cells respond to arrhythmic flow is not fully understood, mainly due to the limitation of current in vitro systems to mimic arrhythmic flow conditions. To address this limitation, we developed a microfluidic system to study the effect of arrhythmic flow on the mechanobiology of human aortic endothelial cells (HAECs). The system utilises a computer-controlled piezoelectric pump for generating arrhythmic flow with a unique ability to control the variability in both the frequency and amplitude of pulse waves. The flow rate is modulated to reflect physiological or pathophysiological shear stress levels on endothelial cells. This enabled us to systematically dissect the importance of variability in the frequency and amplitude of pulses and shear stress level on endothelial cell mechanobiology. Our results indicated that arrhythmic flow at physiological shear stress level promotes endothelial cell spreading and reduces the plasma membrane-to-cytoplasmic distribution of β-catenin. In contrast, arrhythmic flow at low and atherogenic shear stress levels does not promote endothelial cell spreading or redistribution of β-catenin. Interestingly, under both shear stress levels, arrhythmic flow induces inflammation by promoting monocyte adhesion via an increase in ICAM-1 expression. Collectively, our microfluidic system provides opportunities to study the effect of arrhythmic flows on vascular endothelial mechanobiology in a systematic and reproducible manner.

Abstract Image

研究心律失常流对内皮细胞影响的微流控模型
心房颤动(房颤)是最常见的心律失常类型,也是导致发病率和死亡率的重要因素。据推测,内皮功能障碍是导致心房颤动患者发生心血管事件的一个重要因素。然而,人们对血管内皮细胞如何对心律失常血流做出反应尚不完全清楚,这主要是由于目前的体外系统在模拟心律失常血流条件方面存在局限性。为了解决这一局限性,我们开发了一种微流控系统来研究心律失常血流对人主动脉内皮细胞(HAECs)机械生物学的影响。该系统利用计算机控制的压电泵产生节律性流动,具有控制脉冲波频率和振幅变化的独特能力。流速可调,以反映内皮细胞的生理或病理切应力水平。这使我们能够系统地剖析脉冲频率和振幅的变化以及剪切应力水平对内皮细胞机械生物学的重要性。我们的研究结果表明,生理剪切应力水平下的节律性流动会促进内皮细胞扩散,并减少质膜到细胞质的β-catenin分布。与此相反,低剪切应力和动脉粥样硬化剪切应力水平下的心律失常血流不会促进内皮细胞扩散或β-catenin的重新分布。有趣的是,在这两种剪切应力水平下,心律失常流都会通过增加 ICAM-1 的表达促进单核细胞粘附,从而诱发炎症。总之,我们的微流控系统为以系统和可重复的方式研究节律流对血管内皮机械生物学的影响提供了机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Lab on a Chip
Lab on a Chip 工程技术-化学综合
CiteScore
11.10
自引率
8.20%
发文量
434
审稿时长
2.6 months
期刊介绍: Lab on a Chip is the premiere journal that publishes cutting-edge research in the field of miniaturization. By their very nature, microfluidic/nanofluidic/miniaturized systems are at the intersection of disciplines, spanning fundamental research to high-end application, which is reflected by the broad readership of the journal. Lab on a Chip publishes two types of papers on original research: full-length research papers and communications. Papers should demonstrate innovations, which can come from technical advancements or applications addressing pressing needs in globally important areas. The journal also publishes Comments, Reviews, and Perspectives.
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