首页> 外文会议>Annual International Conference of the IEEE Engineering in Medicine and Biology Society >Effects of I{sub}h and I{sub}(KLT) on the Response of the Auditory Nerve to Electrical Stimulation in a Stochastic Hodgkin-Huxley Model
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Effects of I{sub}h and I{sub}(KLT) on the Response of the Auditory Nerve to Electrical Stimulation in a Stochastic Hodgkin-Huxley Model

机译:I {Sub} H和I}(klt)对随机Hodgkin-Huxley模型中听觉神经对电刺激的响应的影响

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An accurate model of auditory nerve fibers (ANFs) would help in improving cochlear implant (CI) functionality. Previous studies have shown that the original Hodgkin-Huxley (1952) model (with kinetics adjusted for mammalian body temperature) may be better at describing nodes of Ranvier in ANFs than models for other mammalian axon types. However, the HH model is still unable to explain a number of phenomena observed in auditory nerve responses to CI stimulation such as long-term accommodation, adaptation and the time-course of relative refractoriness. Recent physiological investigations of spiral ganglion cells have shown the presence of a number of ion channel types not considered in the previous modeling studies, including low-threshold potassium (I{sub}(KLT)) channels and hyperpolarization-activated cation (I{sub}h) channels. In this paper we investigate inclusion of these ion channel types in a stochastic HH model. For single biphasic charge-balanced pulse, an increase in spike threshold was typically produced by inclusion of one or both of these channel types. The addition of I{sub}(KLT) increases random threshold fluctuations in the stochastic model, particularly for longer pulse widths. Pulse-train responses were investigated for pulse rates of 200, 800, and 2000 pulse/s. Initial results suggests that both the I{sub}(KLT) channels and I{sub}h channels can produce adaptation in the spike rate. However, the adaptation due to I{sub}(KLT) is restricted to higher stimulation rates, whereas the adaptation due to I{sub}h is observed across all stimulation rates.
机译:精确的听觉神经纤维(ANF)模型将有助于改善耳蜗植入物(CI)功能。以前的研究表明,原来的Hodgkin-Huxley(1952)模型(带有用于哺乳动物体温的动力学)可能更好地描述ANFS中Ranvier的节点而不是其他哺乳动物轴突类型的模型。然而,HH模型仍然无法解释在听觉神经反应中观察到的诸如长期住宿,适应性和相对耐火性的时间过程中观察到的许多现象。最近的螺旋神经节细胞的生理研究表明存在许多在先前建模研究中不考虑的离子通道类型,包括低阈值钾(I {Sub}(KLT))通道和超极化激活的阳离子(I {Sub h)渠道。在本文中,我们研究了在随机HH模型中的这些离子通道类型。对于单个双相电荷平衡脉冲,通常通过包含这些通道类型中的一个或两个来产生尖峰阈值的增加。添加I {sub}(klt)增加了随机模型中的随机阈值波动,特别是对于较长的脉冲宽度。研究了脉冲列车响应,针对200,800和2000脉冲/ s的脉冲速率进行了调查。初始结果表明,I {sub}(klt)通道和i {sub} h频道都可以以尖峰率产生调整。然而,由I {sub}(klt)引起的自适应仅限于较高的刺激速率,而横跨所有刺激率观察到I {sub} h引起的自适应。

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