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Noninvasive Mechanochemical Imaging in Unconstrained Caenorhabditis elegans

机译:无限制秀丽隐杆线虫的无创机械化学成像

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摘要

Physical forces are transduced into chemical reactions, thereby ultimately making a large impact on the whole-animal level phenotypes such as homeostasis, development and behavior. To understand mechano-chemical transduction, mechanical input should be quantitatively delivered with controllable vibration properties–frequency, amplitude and duration, and its chemical output should be noninvasively quantified in an unconstrained animal. However, such an experimental system has not been established so far. Here, we develop a noninvasive and unconstrained mechanochemical imaging microscopy. This microscopy enables us to evoke nano-scale nonlocalized vibrations with controllable vibration properties using a piezoelectric acoustic transducer system and quantify calcium response of a freely moving C. elegans at a single cell resolution. Using this microscopy, we clearly detected the calcium response of a single interneuron during C. elegans escape response to nano-scale vibration. Thus, this microscopy will facilitate understanding of in vivo mechanochemical physiology in the future.
机译:物理力被转换为化学反应,从而最终对整个动物的表型产生巨大影响,例如稳态,发育和行为。为了理解机械化学转导,应该以可控制的振动特性(频率,振幅和持续时间)定量地传递机械输入,并且在无约束的动物中应以无创方式量化其化学输出。但是,到目前为止尚未建立这样的实验系统。在这里,我们开发了一种无创且不受约束的机械化学成像显微镜。该显微镜使我们能够使用压电声换能器系统唤起具有可控振动特性的纳米级非局部振动,并在单个细胞分辨率下量化自由移动秀丽隐杆线虫的钙响应。使用该显微镜,我们清楚地检测到秀丽隐杆线虫逃逸对纳米级振动的过程中单个中间神经元的钙响应。因此,该显微镜将有助于将来对体内机械化学生理学的理解。

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