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用于研究微血管过程的微流控装置中的内皮细胞培养。

Endothelial cell culture in microfluidic devices for investigating microvascular processes.

作者信息

Mannino Robert G, Qiu Yongzhi, Lam Wilbur A

出版信息

Biomicrofluidics. 2018 May 15;12(4):042203. doi: 10.1063/1.5024901. eCollection 2018 Jul.

Abstract

Numerous conditions and disease states such as sickle cell disease, malaria, thrombotic microangiopathy, and stroke significantly impact the microvasculature function and its role in disease progression. Understanding the role of cellular interactions and microvascular hemodynamic forces in the context of disease is crucial to understanding disease pathophysiology. models of microvascular disease using animal models often coupled with intravital microscopy have long been utilized to investigate microvascular phenomena. However, these methods suffer from some major drawbacks, including the inability to tightly and quantitatively control experimental conditions, the difficulty of imaging multiple microvascular beds within a living organism, and the inability to isolate specific microvascular geometries such as bifurcations. Thus, there exists a need for microvascular models that can mitigate the drawbacks associated with systems. To that end, microfluidics has been widely used to develop such models, as it allows for tight control of system inputs, facile imaging, and the ability to develop robust and repeatable systems with well-defined geometries. Incorporating endothelial cells to branching microfluidic models allows for the development of "endothelialized" systems that accurately recapitulate physiological microvessels. In this review, we summarize the field of endothelialized microfluidics, specifically focusing on fabrication methods, limitations, and applications of these systems. We then speculate on future directions and applications of these cutting edge technologies. We believe that this review of the field is of importance to vascular biologists and bioengineers who aim to utilize microfluidic technologies to solve vascular problems.

摘要

许多病症和疾病状态,如镰状细胞病、疟疾、血栓性微血管病和中风,都会显著影响微血管功能及其在疾病进展中的作用。了解细胞相互作用和微血管血流动力学力在疾病背景下的作用对于理解疾病病理生理学至关重要。长期以来,使用动物模型并常常结合活体显微镜检查来研究微血管现象的微血管疾病模型一直被用于研究微血管现象。然而,这些方法存在一些主要缺点,包括无法严格和定量地控制实验条件、难以对活体内的多个微血管床进行成像,以及无法分离特定的微血管几何形状,如分叉。因此,需要能够减轻与现有系统相关缺点的微血管模型。为此,微流体技术已被广泛用于开发此类模型,因为它允许对系统输入进行严格控制、便于成像,并且能够开发具有明确几何形状的强大且可重复的系统。将内皮细胞整合到分支微流体模型中可以开发出能够准确模拟生理微血管的“内皮化”系统。在本综述中,我们总结了内皮化微流体领域,特别关注这些系统的制造方法、局限性和应用。然后,我们推测这些前沿技术的未来方向和应用。我们相信,对该领域的这一综述对于旨在利用微流体技术解决血管问题的血管生物学家和生物工程师具有重要意义。

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