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Microfluidic Transportation Control of Larval Zebrafish through Optomotor Regulations under a Pressure-Driven Flow

机译:在压力驱动流下通过光动力规则控制幼体斑马鱼的微流控。

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摘要

To perform zebrafish larvae-related experiments within a microfluidic environment, the larvae need to be anesthetized and subsequently transported into respective test sections through mechanical or manual means. However, anesthetization tends to affect larval sensory perceptions, hindering their natural behaviors. Taking into account that juvenile larvae move naturally within their environment by accessing visual as well as hydromechanical cues, this work proposes an experimental framework to transport nonanesthetized larvae within a microfluidic environment by harmonically tuning both of the aforementioned cues. To provide visual cues, computer-animated moving gratings were provided through an in-house-developed control interface that drove the larval optomotor response. In the meantime, to provide hydromechanical cues, the flow rate was tuned using a syringe pump that affected the zebrafish larvae’s lateral line movement. The results obtained (corresponding to different test conditions) suggest that the magnitude of both modalities plays a crucial role in larval transportation and orientation control. For instance, with a flow rate tuning of 0.1 mL/min along with grating parameters of 1 Hz temporal frequency, the average transportation time for larvae that were 5 days postfertilization was recorded at 1.29 ± 0.49 s, which was approximately three times faster than the transportation time required only in the presence of hydromechanical cues.
机译:为了在微流体环境中进行与斑马鱼幼虫相关的实验,需要麻醉幼虫,然后通过机械或手动方式将其运输到各个测试部分。但是,麻醉往往会影响幼虫的感官知觉,从而阻碍其自然行为。考虑到幼虫可以通过视觉和水力机械线索在其环境中自然移动,因此这项工作提出了一个实验框架,可通过谐调上述两个线索在微流体环境中运输非麻醉幼虫。为了提供视觉提示,通过内部开发的控制界面提供了计算机动画的移动光栅,该控制界面推动了幼虫的光动力反应。同时,为了提供水力机械提示,使用了影响斑马鱼幼虫侧线运动的注射泵来调节流速。获得的结果(对应于不同的测试条件)表明,两种形态的大小在幼虫运输和方向控制中起着至关重要的作用。例如,在流速调整为0.1 mL / min且光栅参数为1 Hz时频的情况下,受精后5天的幼虫平均运输时间记录为1.29±0.49 s,这大约是受精后的三倍。仅在存在液压机械提示的情况下才需要运输时间。

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