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利用微流控装置分析秀丽隐杆线虫的趋流行为。

Profile analysis of C. elegans rheotaxis behavior using a microfluidic device.

机构信息

The Key Laboratory for Biomedical Photonics of MOE at Wuhan National Laboratory for Optoelectronics - Hubei Bioinformatics & Molecular Imaging Key Laboratory, Systems Biology Theme, Department of Biomedical Engineering, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan 430074, China.

出版信息

Lab Chip. 2019 Jan 29;19(3):475-483. doi: 10.1039/c8lc01087k.

Abstract

The directed motility of organisms in response to fluid velocity, which is called rheotaxis, is important in the life cycle of C. elegans, enabling them to navigate their environment and maintain their positions in the presence of adverse flow. Thus, to study the mechanism underlying rheotaxis behavior and reveal information on parasitic diseases, the profile analysis of the rheotaxis response in worm populations with high resolution in well-defined fluid environments is highly desirable. In this work, we presented a rapid and robust microfluidic approach to quantitatively analyze the rheotaxis behavior of worms in response to velocity. The flow-based microfluidic chip contained six helical spline microchannels for generating six flow streams with different flow velocities. Since the worms loaded in the chip would swim upstream into channels, the distribution of the worms in response to the different flow velocities was successfully monitored for the quantitative analysis of their rheotaxis behavior using this microfluidic chip. The results indicated that the rate range of around 50 μm s-1 was the most favorable flow velocity for the wild-type worms. Further, we analyzed ASH neuron-blocked worms and found that the functionally defective ASH neurons inhibited their sensitivity to flow rate. In addition, the rheotaxis analysis of the mutant worms indicated that TRP mechanosensory channels and serotonin signals also play a regulatory role in the rheotaxis response of these worms. Thus, our microfluidic method provides a useful platform to study the rheotaxis behaviors in C. elegans and can be further applied for anti-parasitic drug tests.

摘要

生物体对流体速度的定向运动,即趋流性,在秀丽隐杆线虫的生命周期中非常重要,使它们能够在环境中导航并在存在不利流动的情况下保持位置。因此,为了研究趋流性行为的机制并揭示寄生虫病的信息,在明确定义的流体环境中以高分辨率对虫群的趋流性反应进行分析是非常可取的。在这项工作中,我们提出了一种快速而稳健的微流控方法,用于定量分析线虫对速度的趋流性反应。基于流动的微流控芯片包含六个螺旋样微通道,用于产生具有不同流速的六个流动流。由于加载到芯片中的线虫会逆流进入通道,因此可以使用这种微流控芯片成功监测线虫对不同流速的分布,从而对其趋流性反应进行定量分析。结果表明,约 50 μm s-1 的速率范围是野生型线虫最有利的流速。此外,我们分析了 ASH 神经元阻断的线虫,发现功能缺陷的 ASH 神经元抑制了它们对流速的敏感性。此外,突变线虫的趋流性分析表明,TRP 机械感觉通道和血清素信号也在这些线虫的趋流性反应中发挥调节作用。因此,我们的微流控方法为研究秀丽隐杆线虫的趋流性行为提供了一个有用的平台,并可进一步应用于抗寄生虫药物测试。

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