首页> 外文学位 >Acoustic responses and electrotonic properties of morphologically-defined neurons in dorsal cochlear nucleus of unanesthetized, decerebrate gerbils: An experimental and modeling study.
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Acoustic responses and electrotonic properties of morphologically-defined neurons in dorsal cochlear nucleus of unanesthetized, decerebrate gerbils: An experimental and modeling study.

机译:未麻醉的小脑沙鼠的背侧耳蜗神经形态学定义的神经元的声学响应和电声特性:一项实验和模型研究。

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摘要

The dorsal cochlear nucleus (DCN) is a laminated neural structure that consists of several morphologically different neuron types. The complexity of its intrinsic neural circuitry suggests that the DCN is capable of performing sophisticated signal processing. Yet little is known about the physiological characteristics such as acoustic response and electrotonic membrane properties of any particular DCN neuron type. The purpose of this study was to gain such knowledge and establish a relationship between cell physiology and morphology, which is important in understanding the DCN neural circuitry and function. To do so, intracellular single-unit recording and marking experiments were conducted on decerebrate gerbils using HRP- or neurobiotin-filled micropipettes. Intracellular responses to acoustic (tone and broadband noise bursts) and electric stimuli (depolarizing and hyperpolarizing current pulses) were recorded and associated with cell morphology. Acoustic responses were classified according to the response map scheme (type I to type V). To study the electrotonic membrane properties of DCN neurons, a compartmental neuron model was developed, from which electrotonic parameters such as membrane time constant and electrotonic dendritic length were estimated from responses to hyperpolarizing current injections.;Recorded DCN cells include fusiform, giant and cartwheel cells. The results have demonstrated a correlation between the morphology of these neurons and their acoustic responses. While most fusiform and giant cells were associated with type III and type IV unit response properties, respectively, cartwheel cells were found to have unique and much weaker acoustic responses. Some features of membrane properties were also correlated with cell morphology, but to a lesser degree. Nearly all fusiform and giant cells fired only simple action potentials and had monotonic driven rate vs. current level curve, whereas all cartwheel cells discharged complex action potentials and had nonmonotonic rate-current relationship. Results from the electrotonic study suggest that DCN neurons may not be reliably distinguished from each other by their electrotonic parameters. A statistical analysis has also shown the limits of applying electrotonic models to DCN neurons. Overall, these results have revealed novel information about the characteristics of DCN neurons, and are a step further toward our understanding of the neural circuitry and functional mechanism of the DCN.
机译:背侧耳蜗核(DCN)是一种层叠的神经结构,由几种形态不同的神经元类型组成。其内在神经电路的复杂性表明DCN能够执行复杂的信号处理。对于任何特定DCN神经元类型的生理特性(如声音响应和电渗膜特性),人们知之甚少。这项研究的目的是获得此类知识并建立细胞生理学与形态之间的关系,这对于理解DCN神经回路和功能非常重要。为此,使用HRP或神经生物素填充的微量移液器对无脑沙鼠进行了细胞内单单位记录和标记实验。记录细胞内对声(音调和宽带噪声突发)和电刺激(去极化和超极化电流脉冲)的反应,并与细胞形态相关。根据响应图方案(I型到V型)对声学响应进行分类。为了研究DCN神经元的电渗膜特性,建立了一个隔室神经元模型,从中通过对超极化电流注射的响应来估算诸如时间的膜时间常数和电渗树突长度等电渗参数。记录的DCN细胞包括梭形,巨细胞和车轮细胞。结果证明了这些神经元的形态与其声学反应之间的相关性。虽然大多数梭形细胞和巨细胞分别与III型和IV型单位反应特性有关,但发现车轮细胞具有独特且较弱的声学反应。膜特性的某些特征也与细胞形态相关,但程度较小。几乎所有梭形细胞和巨细胞仅发射简单的动作电位,并具有单调驱动速率与电流水平曲线,而所有车轮细胞均释放出复杂的动作电位且具有非单调速率-电流关系。电渗研究的结果表明,DCN神经元可能无法通过其电渗参数彼此可靠地区分开。统计分析还显示了将电渗模型应用于DCN神经元的局限性。总体而言,这些结果揭示了有关DCN神经元特征的新颖信息,并且是朝着我们进一步了解DCN的神经回路和功能机制迈出的一步。

著录项

  • 作者

    Ding, Jiang.;

  • 作者单位

    Boston University.;

  • 授予单位 Boston University.;
  • 学科 Neurosciences.;Morphology.;Animal Physiology.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 168 p.
  • 总页数 168
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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