Takahashi Momoko, Sanchez Jason Tait
Roxelyn and Richard Pepper Department of Communication Sciences and Disorders, Northwestern University, Evanston, IL, USA.
Department of Neurobiology, Northwestern University, Evanston, IL, USA.
Neurosci Insights. 2020 Dec 10;15:2633105520980442. doi: 10.1177/2633105520980442. eCollection 2020.
Neurotrophins, a class of growth factor proteins that control neuronal proliferation, morphology, and apoptosis, are found ubiquitously throughout the nervous system. One particular neurotrophin (NT-3) and its cognate tyrosine receptor kinase (TrkC) have recently received attention as a possible therapeutic target for synaptopathic sensorineural hearing loss. Additionally, research shows that NT-3-TrkC signaling plays a role in establishing the sensory organization of frequency topology (ie, tonotopic order) in the cochlea of the peripheral inner ear. However, the neurotrophic effects of NT-3 on central auditory properties are unclear. In this study we examined whether NT-3-TrkC signaling affects the intrinsic electrophysiological properties at a first-order central auditory structure in chicken, known as nucleus magnocellularis (NM). Here, the expression pattern of specific neurotrophins is well known and tightly regulated. By using whole-cell patch-clamp electrophysiology, we show that NT-3 application to brainstem slices does not affect intrinsic properties of high-frequency neuronal regions but had robust effects for low-frequency neurons, altering voltage-dependent potassium functions, action potential repolarization kinetics, and passive membrane properties. We suggest that NT-3 may contribute to the precise establishment and organization of tonotopy in the central auditory pathway by playing a specialized role in regulating the development of intrinsic neuronal properties of low-frequency NM neurons.
神经营养因子是一类控制神经元增殖、形态和凋亡的生长因子蛋白,在整个神经系统中广泛存在。一种特定的神经营养因子(NT-3)及其同源酪氨酸受体激酶(TrkC)最近作为突触性感觉神经性听力损失的一种可能治疗靶点而受到关注。此外,研究表明NT-3-TrkC信号传导在外周内耳耳蜗频率拓扑结构(即音频拓扑顺序)的感觉组织建立中发挥作用。然而,NT-3对中枢听觉特性的神经营养作用尚不清楚。在本研究中,我们研究了NT-3-TrkC信号传导是否会影响鸡的一级中枢听觉结构——巨细胞核(NM)的内在电生理特性。在这里,特定神经营养因子的表达模式是众所周知的且受到严格调控。通过使用全细胞膜片钳电生理学技术,我们发现将NT-3应用于脑干切片不会影响高频神经元区域的内在特性,但对低频神经元有显著影响,改变了电压依赖性钾离子功能、动作电位复极化动力学和被动膜特性。我们认为,NT-3可能通过在调节低频NM神经元内在神经元特性的发育中发挥特殊作用,从而有助于中枢听觉通路中音频拓扑的精确建立和组织。