A procedure to label inner ear afferent nerve endings for calcium imaging

Samuel Boyer, Jérôme Ruel, Jean-Luc Puel, Christian Chabbert
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引用次数: 13

Abstract

Characterization of synaptic transmission between the inner ear sensory cells and primary neuron dendrites has been hampered by the limited access to the postsynaptic terminals. Because direct physiological recording of postsynaptic currents are difficult to achieve, no information regarding the synaptic and dendritic events are available. This is due to the small size of the postsynaptic afferent nerve endings that do not allow a clear identification, and thus compromise direct electrophysiological recordings of the buttons. To study the physiology of afferent nerve endings, we have developed a two-photon imaging technique in cochlear and vestibular slice preparations from neonatal rats and turtles. This technique is based on a retrograde labeling of afferent nerve endings with high-affinity calcium-sensitive dyes. Dye filling was achieved by 6 h application of the dextran–amine conjugate of calcium green-1. Calcium changes were measured in afferent nerve endings in line scan and time lap mode. To address recording in a near-physiological situation, iontophoretic application of K+ was performed in the area of the stereocilia whereas glutamate was applied at the basal pole of sensory hair cells. Both types of application cause a reversible and sustained increase of Ca2+ in the button of afferent nerve fibers. Typical recordings are presented and potential interests for pharmacological studies of inner ear sensory cell synapses are discussed.

内耳传入神经末梢钙显像标记的程序
内耳感觉细胞和初级神经元树突之间突触传递的表征一直受到突触后终末的限制。由于突触后电流的直接生理记录很难实现,因此没有关于突触和树突事件的信息。这是由于突触后传入神经末梢的尺寸小,不允许清晰的识别,从而损害了按钮的直接电生理记录。为了研究传入神经末梢的生理学,我们在新生大鼠和龟的耳蜗和前庭切片制备中开发了双光子成像技术。这项技术是基于逆行标记传入神经末梢与高亲和力钙敏感染料。用绿钙-1的右旋氨基偶联物6小时即可完成染料填充。行扫描和时间圈模式测量传入神经末梢钙的变化。为了在接近生理的情况下进行记录,在立纤毛区域进行K+离子电泳,而在感觉毛细胞的基极施用谷氨酸。两种类型的应用引起可逆和持续的Ca2+增加传入神经纤维的按钮。介绍了典型的记录,并讨论了内耳感觉细胞突触药理研究的潜在兴趣。
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