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斑马鱼侧线的生理记录。

Physiological recordings from the zebrafish lateral line.

作者信息

Olt J, Ordoobadi A J, Marcotti W, Trapani J G

机构信息

University of Sheffield, Sheffield, United Kingdom.

Amherst College, Amherst, MA, United States.

出版信息

Methods Cell Biol. 2016;133:253-79. doi: 10.1016/bs.mcb.2016.02.004. Epub 2016 Mar 4.

Abstract

During sensory transduction, external physical stimuli are translated into an internal biological signal. In vertebrates, hair cells are specialized mechanosensory receptors that transduce sound, gravitational forces, and head movements into electrical signals that are transmitted with remarkable precision and efficiency to afferent neurons. Hair cells have a conserved structure between species and are also found in the lateral line system of fish, including zebrafish, which serve as an ideal animal model to study sensory transmission in vivo. In this chapter, we describe the methods required to investigate the biophysical properties underlying mechanosensation in the lateral line of the zebrafish in vivo from microphonic potentials and single hair cell patch-clamp recordings to single afferent neuron recordings. These techniques provide real-time measurements of hair-cell transduction and transmission following delivery of controlled and defined stimuli and their combined use on the intact zebrafish provides a powerful platform to investigate sensory encoding in vivo.

摘要

在感觉转导过程中,外部物理刺激被转化为内部生物信号。在脊椎动物中,毛细胞是专门的机械感觉受体,它们将声音、重力和头部运动转化为电信号,并以极高的精度和效率传递给传入神经元。毛细胞在物种间具有保守的结构,也存在于鱼类(包括斑马鱼)的侧线系统中,斑马鱼是研究体内感觉传递的理想动物模型。在本章中,我们描述了从微音器电位、单个毛细胞膜片钳记录到单个传入神经元记录,研究斑马鱼侧线机械感觉背后生物物理特性所需的方法。这些技术能够在施加可控且明确的刺激后,对毛细胞的转导和传递进行实时测量,并且将它们联合应用于完整的斑马鱼上,为研究体内感觉编码提供了一个强大的平台。

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