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一种集成了毛细管辅助压力传感器的微流控循环系统。

A microfluidic circulatory system integrated with capillary-assisted pressure sensors.

机构信息

Department of Chemistry, The Hong Kong University of Science and Technology, Hong Kong, China.

Division of Biomedical Engineering, The Hong Kong University of Science and Technology, Hong Kong, China.

出版信息

Lab Chip. 2017 Feb 14;17(4):653-662. doi: 10.1039/c6lc01427e.

Abstract

The human circulatory system comprises a complex network of blood vessels interconnecting biologically relevant organs and a heart driving blood recirculation throughout this system. Recreating this system in vitro would act as a bridge between organ-on-a-chip and "body-on-a-chip" and advance the development of in vitro models. Here, we present a microfluidic circulatory system integrated with an on-chip pressure sensor to closely mimic human systemic circulation in vitro. A cardiac-like on-chip pumping system is incorporated in the device. It consists of four pumping units and passive check valves, which mimic the four heart chambers and heart valves, respectively. Each pumping unit is independently controlled with adjustable pressure and pump rate, enabling users to control the mimicked blood pressure and heartbeat rate within the device. A check valve is located downstream of each pumping unit to prevent backward leakage. Pulsatile and unidirectional flow can be generated to recirculate within the device by programming the four pumping units. We also report an on-chip capillary-assisted pressure sensor to monitor the pressure inside the device. One end of the capillary was placed in the measurement region, while the other end was sealed. Time-dependent pressure changes were measured by recording the movement of the liquid-gas interface in the capillary and calculating the pressure using the ideal gas law. The sensor covered the physiologically relevant blood pressure range found in humans (0-142.5 mmHg) and could respond to 0.2 s actuation time. With the aid of the sensor, the pressure inside the device could be adjusted to the desired range. As a proof of concept, human normal left ventricular and arterial pressure profiles were mimicked inside this device. Human umbilical vein endothelial cells (HUVECs) were cultured on chip and cells can respond to mechanical forces generated by arterial-like flow patterns.

摘要

人体循环系统由相互连接的生物相关器官的复杂血管网络和驱动血液在整个系统中再循环的心脏组成。在体外重现这个系统将充当器官芯片和“体芯片”之间的桥梁,并推进体外模型的发展。在这里,我们展示了一种与片上压力传感器集成的微流控循环系统,以在体外紧密模拟人体全身循环。该装置中集成了一个类似于心脏的片上泵送系统。它由四个泵送单元和被动止回阀组成,分别模拟四个心脏腔室和心脏瓣膜。每个泵送单元都可以独立控制,具有可调节的压力和泵送速率,使用户能够控制设备内模拟的血压和心跳率。在每个泵送单元的下游都有一个止回阀,以防止回流。通过编程四个泵送单元,可以产生脉动和单向流动,在设备内再循环。我们还报告了一种片上毛细管辅助压力传感器,用于监测设备内部的压力。毛细管的一端置于测量区域,另一端密封。通过记录毛细管内液-气界面的移动并用理想气体定律计算压力来测量压力随时间的变化。该传感器覆盖了人体中发现的生理相关血压范围(0-142.5mmHg),并且可以响应 0.2s 的激励时间。借助传感器,可以将设备内部的压力调整到所需的范围。作为概念验证,在该装置内模拟了人体正常左心室和动脉压力曲线。人脐静脉内皮细胞(HUVEC)在芯片上培养,细胞可以响应动脉样流模式产生的机械力。

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