Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC 27708, USA.
Lab Chip. 2019 Mar 13;19(6):984-992. doi: 10.1039/c8lc01012a.
Controllable, precise, and stable rotational manipulation of model organisms is valuable in many biomedical, bioengineering, and biophysics applications. We present an acoustofluidic chip capable of rotating Caenorhabditis elegans (C. elegans) in both static and continuous flow in a controllable manner. Rotational manipulation was achieved by exposing C. elegans to a surface acoustic wave (SAW) field that generated a vortex distribution inside a microchannel. By selectively activating interdigital transducers, we achieved bidirectional rotation of C. elegans, namely counterclockwise and clockwise, with on-demand switching of rotation direction in a single chip. In addition to continuous rotation, we also rotated C. elegans in a step-wise fashion with a step angle as small as 4° by pulsing the signal duration of SAW from a continuous signal to a pulsed signal down to 1.5 ms. Using this device, we have clearly imaged the dopaminergic neurons of C. elegans with pdat-1:GFP expression, as well as the vulval muscles and muscle fibers of the worm with myo-3::GFP fusion protein expression in different orientations and three dimensions. These achievements are difficult to realize through conventional (i.e., non-confocal) microscopy. The SAW manipulations did not detectably affect the health of the model organisms. With its precision, controllability, and simplicity in fabrication and operation, our acoustofluidic devices will be well-suited for model organism studies.
可控、精确且稳定的模式生物旋转操控在许多生物医学、生物工程和生物物理应用中具有重要价值。我们提出了一种声流控芯片,能够以可控的方式在静态和连续流动中旋转秀丽隐杆线虫(C. elegans)。通过将秀丽隐杆线虫暴露在表面声波(SAW)场中,实现了旋转操作,该场在微通道内产生了涡旋分布。通过选择性地激活叉指换能器,我们实现了秀丽隐杆线虫的双向旋转,即逆时针和顺时针,并且能够在单个芯片上按需切换旋转方向。除了连续旋转,我们还通过将 SAW 的信号持续时间从连续信号脉冲到脉冲信号(降至 1.5 毫秒),以小至 4°的步长角度逐步旋转秀丽隐杆线虫。使用该装置,我们可以清晰地对具有 pdat-1:GFP 表达的秀丽隐杆线虫的多巴胺能神经元进行成像,以及对具有 myo-3::GFP 融合蛋白表达的线虫的生殖腺肌肉和肌肉纤维进行成像,呈现不同的方位和三维结构。这些成就是通过传统(即非共聚焦)显微镜难以实现的。SAW 操作不会对模型生物的健康产生明显影响。我们的声流控设备具有精度高、可控性好、制造和操作简单等优点,非常适合用于模式生物研究。