Zarei Kasra, Elliott Karen L, Zarei Sanam, Fritzsch Bernd, Buchholz James H J
Department of Biomedical Engineering, University of Iowa.
Department of Biology, University of Iowa.
J Exp Anal Behav. 2017 Jul;108(1):113-124. doi: 10.1002/jeab.263. Epub 2017 Jun 27.
Prolonged space flight, specifically microgravity, presents a problem for space exploration. Animal models with altered connections of the vestibular ear, and thus altered gravity sensation, would allow the examination of the effects of microgravity and how various countermeasures can establish normal function. We describe an experimental apparatus to monitor the effects of ear manipulations to generate asymmetric gravity input on the tadpole escape response. To perform the movement pattern analysis, an imaging apparatus was developed that uses a high-speed camera to obtain time-resolved, high-resolution images of tadpole movements. Movements were recorded in a temperature-controlled test chamber following mechanical stimulation with a solenoid actuator, to elicit a C-start response. Temperature within the test cell was controlled with a recirculating water bath. Xenopus laevis embryos were obtained using a standard fertilization technique. Tadpole response to a controlled perturbation was recorded in unprecedented detail and the approach was validated by describing the distinct differences in response between normal and one-eared tadpoles. The experimental apparatus and methods form an important element of a rigorous investigation into the response of the tadpole vestibular system to mechanical and biochemical manipulations, and can ultimately contribute to improved understanding of the effects of altered gravity perception on humans.
长时间的太空飞行,尤其是微重力环境,给太空探索带来了一个问题。具有改变的内耳连接从而改变重力感知的动物模型,将有助于研究微重力的影响以及各种应对措施如何建立正常功能。我们描述了一种实验装置,用于监测耳部操作对蝌蚪逃避反应产生不对称重力输入的影响。为了进行运动模式分析,开发了一种成像装置,该装置使用高速相机获取蝌蚪运动的时间分辨、高分辨率图像。在用螺线管致动器进行机械刺激以引发C型启动反应后,在温度控制的测试室中记录运动。测试单元内的温度通过循环水浴进行控制。非洲爪蟾胚胎通过标准受精技术获得。以前所未有的细节记录了蝌蚪对受控扰动的反应,并且通过描述正常蝌蚪和单耳蝌蚪之间反应的明显差异验证了该方法。该实验装置和方法构成了对蝌蚪前庭系统对机械和生化操作反应进行严格研究的重要部分,并最终有助于更好地理解重力感知改变对人类的影响。