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嵌入式微流控装置的电液压力传感器:静水压力和切应力组合下内皮细胞的研究。

Electrofluidic pressure sensor embedded microfluidic device: a study of endothelial cells under hydrostatic pressure and shear stress combinations.

机构信息

Research Center for Applied Sciences, Academia Sinica, Taipei 11529, Taiwan.

出版信息

Lab Chip. 2013 May 7;13(9):1743-53. doi: 10.1039/c3lc41414k.

Abstract

Various microfluidic cell culture devices have been developed for in vitro cell studies because of their capabilities to reconstitute in vivo microenvironments. However, controlling flows in microfluidic devices is not straightforward due to the wide varieties of fluidic properties of biological samples. Currently, flow observations mainly depend on optical imaging and macro scale transducers, which usually require sophisticated instrumentation and are difficult to scale up. Without real time monitoring, the control of flows can only rely on theoretical calculations and numerical simulations. Consequently, these devices have difficulty in being broadly exploited in biological research. This paper reports a microfluidic device with embedded pressure sensors constructed using electrofluidic circuits, which are electrical circuits built by fluidic channels filled with ionic liquid. A microfluidic device culturing endothelial cells under various shear stress and hydrostatic pressure combinations is developed to demonstrate this concept. The device combines the concepts of electrofluidic circuits for pressure sensing, and an equivalent circuit model to design the cell culture channels. In the experiments, human umbilical vein endothelial cells (HUVECs) are cultured in the device with a continuous medium perfusion, which provides the combinatory mechanical stimulations, while the hydrostatic pressures are monitored in real time to ensure the desired culture conditions. The experimental results demonstrate the importance of real time pressure monitoring, and how both mechanical stimulations affect the HUVEC culture. This developed microfluidic device is simple, robust, and can be easily scaled up for high-throughput experiments. Furthermore, the device provides a practical platform for an in vitro cell culture under well-controlled and dynamic microenvironments.

摘要

各种微流控细胞培养装置已经被开发出来用于体外细胞研究,因为它们能够重建体内微环境。然而,由于生物样品的流体性质种类繁多,控制微流控装置中的流动并不简单。目前,流动观察主要依赖于光学成像和宏观尺度传感器,这通常需要复杂的仪器,并且难以扩展。没有实时监测,流动的控制只能依赖于理论计算和数值模拟。因此,这些设备在生物研究中很难被广泛利用。本文报道了一种使用电流体电路构建的嵌入式压力传感器的微流控装置,电流体电路是由充满离子液体的流体通道构成的电路。开发了一种在各种剪切应力和静水压力组合下培养内皮细胞的微流控装置来验证这个概念。该装置结合了电流体电路用于压力感应的概念,以及等效电路模型来设计细胞培养通道。在实验中,人脐静脉内皮细胞(HUVECs)在连续介质灌注的装置中进行培养,提供组合的机械刺激,同时实时监测静水压力以确保所需的培养条件。实验结果表明了实时压力监测的重要性,以及机械刺激如何影响 HUVEC 培养。这种开发的微流控装置简单、坚固,并且可以很容易地扩展用于高通量实验。此外,该装置为在受控和动态微环境下进行体外细胞培养提供了一个实用的平台。

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