首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Investigating Outer Hair Cell Motility with a Combination of External Alternating Electrical Field Stimulation and High-speed Image Analysis
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Investigating Outer Hair Cell Motility with a Combination of External Alternating Electrical Field Stimulation and High-speed Image Analysis

机译:结合外部交流电场刺激和高速图像分析研究外毛细胞运动

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摘要

OHCs are cylindrical sensorimotor cells located in the Organ of Corti, the auditory organ inside the mammalian inner ear. The name "hair cells" derives from their characteristic apical bundle of stereocilia, a critical element for detection and transduction of sound energy 1. OHCs are able to change shape —elongate, shorten and bend— in response to electrical, mechanical and chemical stimulation, a motor response considered crucial for cochlear amplification of acoustic signals 2.OHC stimulation induces two different motile responses: i) electromotility, a.k.a fast motility, changes in length in the microsecond range derived from electrically-driven conformational changes in motor proteins densely packed in OHC plasma membrane, and ii) slow motility, shape changes in the millisecond to seconds range involving cytoskeletal reorganization 2, 3. OHC bending is associated with electromotility, and result either from an asymmetric distribution of motor proteins in the lateral plasma membrane, or asymmetric electrical stimulation of those motor proteins (e.g., with an electrical field perpendicular to the long axis of the cells) 4. Mechanical and chemical stimuli induce essentially slow motile responses, even though changes in the ionic conditions of the cells and/or their environment can also stimulate the plasma membrane-embedded motor proteins 5, 6. Since OHC motile responses are an essential component of the cochlear amplifier, the qualitative and quantitative analysis of these motile responses at acoustic frequencies (roughly from 20 Hz to 20 kHz in humans) is a very important matter in the field of hearing research 7.The development of new imaging technology combining high-speed videocameras, LED-based illumination systems, and sophisticated image analysis software now provides the ability to perform reliable qualitative and quantitative studies of the motile response of isolated OHCs to an external alternating electrical field (EAEF) 8. This is a simple and non-invasive technique that circumvents most of the limitations of previous approaches 9-11. Moreover, the LED-based illumination system provides extreme brightness with insignificant thermal effects on the samples and, because of the use of video microscopy, optical resolution is at least 10-fold higher than with conventional light microscopy techniques 12. For instance, with the experimental setup described here, changes in cell length of about 20 nm can be routinely and reliably detected at frequencies of 10 kHz, and this resolution can be further improved at lower frequencies. We are confident that this experimental approach will help to extend our understanding of the cellular and molecular mechanisms underlying OHC motility.
机译:OHC是位于Corti器官(哺乳动物内耳内部的听觉器官)中的圆柱形感觉运动细胞。 “毛细胞”的名称源自其特有的纤毛顶端束,这是检测和传导声能 1 的关键元素。 OHC能够响应电刺激,机械刺激和化学刺激而改变形状(伸长,缩短和弯曲),这被认为是耳蜗放大声信号 2 至关重要的运动反应。OHC刺激会引起两种不同的运动反应:i)电动性,又称快速运动,其长度在微秒范围内的变化,是由OHC质膜中密集堆积的运动蛋白的电驱动构象变化引起的; ii)缓慢运动,在毫秒至秒范围内的形状变化涉及细胞骨架重组 2,3 。 OHC弯曲与电动性相关,可能是由于运动蛋白在侧质膜中的分布不对称,也可能是由于这些运动蛋白的不对称电刺激(例如,垂直于细胞长轴的电场)引起的。 4 。尽管细胞和/或其环境的离子条件的变化也可以刺激质膜嵌入的运动蛋白 5、6 ,但是机械和化学刺激基本上会导致运动反应缓慢。由于OHC运动响应是耳蜗放大器的重要组成部分,因此在听觉频率(人类大约20 Hz至20 kHz)下对这些运动响应的定性和定量分析在听力研究领域非常重要。 7 。结合高速摄像机,基于LED的照明系统和先进的图像分析软件的新成像技术的开发,现在可以对分离的OHC对外部的运动响应进行可靠的定性和定量研究。交变电场(EAEF) 8 。这是一种简单且无创的技术,可以克服以前方法 9-11 的大部分局限性。此外,基于LED的照明系统可提供极高的亮度,并且对样品的影响不明显,而且由于使用了视频显微镜,因此光学分辨率至少比传统光学显微镜技术 12 。例如,通过此处描述的实验装置,可以在10 kHz的频率下常规可靠地检测到大约20 nm的晶胞长度变化,并且在较低的频率下可以进一步提高分辨率。我们相信这种实验方法将有助于扩展我们对OHC运动基础的细胞和分子机制的了解。

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