Development of in vitro microfluidic models to study endothelial responses to pulsatility with different mechanical circulatory support devices†

IF 3.6 3区 化学 Q2 CHEMISTRY, ANALYTICAL Analyst Pub Date : 2024-05-20 DOI:10.1039/D4AN00507D
Xueying Wang, Lixue Liang, Guruprasad A. Giridharan, Palaniappan Sethu, Yanxia Wang, Kai-rong Qin, Peng Qu and Yu Wang
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Abstract

Continuous-flow ventricular assist devices (CFVAD) and counterpulsation devices (CPD) are used to treat heart failure (HF). CFVAD can diminish pulsatility, but pulsatile modes have been implemented to increase vascular pulsatility. The effects of CFVAD in a pulsatile mode and CPD support on the function of endothelial cells (ECs) are yet to be investigated. In this study, two in vitro microfluidic models for culturing ECs are proposed to reproduce blood pressure (BP) and wall shear stress (WSS) on the arterial endothelium while using these medical devices. The layout and parameters of the two microfluidic systems were optimized based on the principle of hemodynamic similarity to efficiently simulate physiological conditions. Moreover, the unique design of the double-pump and double afterload systems could successfully reproduce the working mode of CPDs in an in vitro microfluidic system. The performance of the two systems was verified by numerical simulations and in vitro experiments. BP and WSS under HF, CFVAD in pulsatile modes, and CPD were reproduced accurately in the systems, and these induced signals improved the expression of Ca2+, NO, and reactive oxygen species in ECs, proving that CPD may be effective in normalizing endothelial function and replacing CFVAD to a certain extent to treat non-severe HF. This method offers an important tool for the study of cell mechanobiology and a key experimental basis for exploring the potential value of mechanical circulatory support devices in reducing adverse events and improving outcomes in the treatment of HF in the future.

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开发体外微流控模型,研究内皮对不同机械循环支持装置脉动的反应
持续流心室辅助装置(CFVAD)和反搏器(CPD)已被用于治疗心力衰竭(HF)。CFVAD 可降低搏动性,但脉冲模式可增加血管搏动性。脉动方式的 CFVAD 和 CPD 支持对内皮细胞(ECs)功能的影响有待研究。本研究提出了两种用于培养 ECs 的体外微流控模型,以重现这些医疗设备引起的动脉内皮的血压(BP)和壁剪应力(WSS)。根据血流动力学相似性原理对这两种微流控系统进行了优化,使此类系统的开发和布局更具可重复性。此外,双泵和双后载系统的独特设计可以在体外微流控系统中成功再现 CPD 的工作模式。两种系统的性能通过数值模拟和体外实验得到了验证。HF、脉冲模式的CFVAD和CPD均能准确再现BP和WSS,这些诱导信号改善了EC中Ca2+、NO和活性氧的表达,证明CPD可有效恢复内皮功能,并在一定程度上替代CFVAD治疗非重度HF。该方法为研究细胞机械生物学提供了重要工具,也为探索机械循环支持装置的潜在价值和减少不良事件以改善未来治疗高血压的预后提供了重要的实验基础。
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来源期刊
Analyst
Analyst 化学-分析化学
CiteScore
7.80
自引率
4.80%
发文量
636
审稿时长
1.9 months
期刊介绍: The home of premier fundamental discoveries, inventions and applications in the analytical and bioanalytical sciences
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