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用于蠕动泵送的生物收缩微流控通道。

Biocontractile microfluidic channels for peristaltic pumping.

机构信息

Laboratory of Biophysics of Excitable Systems, Moscow Institute of Physics and Technology, 9 Institutskiy per., Dolgoprudny, Moscow Region, Russian Federation, 141701.

出版信息

Biomed Microdevices. 2017 Aug 9;19(4):72. doi: 10.1007/s10544-017-0216-x.

Abstract

Bio-actuated micro-pumps do not need any external power source and pose no risk of electrical or heat shock for the biological materials in lab-on-chip systems. Several different designs of bio-actuated micro-pumps based on the use of the contractile force of cultured cardiomyocites have been proposed earlier. Here we present a novel type of a bio-actuated micro-pump representing a microfluidic channel with a contractile wall. The flow inside the channel is generated by the peristaltic movement of its wall caused by the propagation of an excitation-contraction wave along the channels surface. The directional flow generated by the pump was demonstrated by tracking of polystyrene microspheres, moving in the direction of the propagation of the excitation-contraction wave with an average velocity of 6-8 μm/min. The suggested design of a micro-pump allows the control of pumping direction, which might be useful for targeted delivery of fluids and substances in lab-on-chip systems. Prospects of future development and implementation of this kind of bio-actuated peristaltic pumps are discussed.

摘要

生物驱动微泵不需要任何外部电源,也不会对微流控系统中的生物材料造成电或热冲击。先前已经提出了几种基于培养心肌细胞收缩力的生物驱动微泵的不同设计。在这里,我们提出了一种新型的生物驱动微泵,它代表了一种具有收缩壁的微流道。通道内的流动是通过通道壁的蠕动运动产生的,这种蠕动运动是由沿着通道表面传播的兴奋-收缩波引起的。通过跟踪聚苯乙烯微球在兴奋-收缩波传播方向上的运动,证明了泵产生的定向流动,平均速度为 6-8 μm/min。所提出的微泵设计允许控制泵送方向,这对于在微流控系统中靶向输送流体和物质可能是有用的。讨论了这种生物驱动蠕动泵的未来发展和实施前景。

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