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首页> 外文期刊>Nature reviews Cancer >Surface acoustic waves enable rotational manipulation of Caenorhabditis elegans
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Surface acoustic waves enable rotational manipulation of Caenorhabditis elegans

机译:表面声波使Caenorhabditis elegans的旋转操作能够旋转操作

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摘要

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 degrees 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.
机译:模型生物的可控性,精确和稳定的旋转操纵在许多生物医学,生物工程和生物物理学应用中是有价值的。我们介绍了一种能够以可控的方式旋转静态和连续流动的Caenorhabdise胶带(C. elegans)的声毒流体芯片。通过将C.杆状物暴露于在微通道内产生涡流分布的表面声波(锯)场来实现旋转操作。通过选择性地激活叉指传感器,我们实现了C.杆状杆的双向旋转,即逆时针且顺时针方向地,随着单个芯片中的按需切换旋转方向。除了连续旋转之外,我们还通过从连续信号从连续信号脉冲到1.5ms的脉冲信号的信号持续时间,在逐步旋转的杆状方形杆状杆状时旋转的杆状杆状的C.杆状物。使用该装置,我们已经用PDAT-1:GFP表达和蠕虫的外阴肌肉和肌肉纤维的肌肉肌肉肌肉和三个不同取向的GFP融合蛋白表达,以及不同取向和三个的外阴肌肉和肌肉纤维的Dopaminergics神经元方面。这些成就难以通过常规(即非共焦)显微镜来实现。 SAW操作没有可检测地影响模型生物的健康状况。在制造和操作方面的精确度,可控性和简单性,我们的声流量器件将非常适合模型生物学研究。

著录项

  • 来源
    《Nature reviews Cancer》 |2019年第6期|共9页
  • 作者单位

    Duke Univ Dept Mech Engn &

    Mat Sci Durham NC 27708 USA;

    Duke Univ Dept Mech Engn &

    Mat Sci Durham NC 27708 USA;

    Duke Univ Dept Mech Engn &

    Mat Sci Durham NC 27708 USA;

    Duke Univ Nicholas Sch Environm Durham NC 27708 USA;

    Duke Univ Dept Mech Engn &

    Mat Sci Durham NC 27708 USA;

    Ascent Bionano Technol Inc Res Triangle Pk NC 27709 USA;

    Duke Univ Dept Mech Engn &

    Mat Sci Durham NC 27708 USA;

    Duke Univ Dept Mech Engn &

    Mat Sci Durham NC 27708 USA;

    Duke Univ Dept Mech Engn &

    Mat Sci Durham NC 27708 USA;

    Duke Univ Nicholas Sch Environm Durham NC 27708 USA;

    Duke Univ Dept Mech Engn &

    Mat Sci Durham NC 27708 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 肿瘤学;
  • 关键词

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