Axon initial segment plasticity caused by auditory deprivation degrades time difference sensitivity in a model of neural responses to cochlear implants.

IF 1.5 4区 医学 Q3 MATHEMATICAL & COMPUTATIONAL BIOLOGY
Anna Jing, Sylvia Xi, Ivan Fransazov, Joshua H Goldwyn
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引用次数: 0

Abstract

Synaptic and neural properties can change during periods of auditory deprivation. These changes may disrupt the computations that neurons perform. In the brainstem of chickens, auditory deprivation can lead to changes in the size and biophysics of the axon initial segment (AIS) of neurons in the sound source localization circuit. This is the phenomenon of axon initial segment (AIS) plasticity. Individuals who use cochlear implants (CIs) experience periods of hearing loss, and so we ask whether AIS plasticity in neurons of the medial superior olive (MSO), a key stage of sound location processing, would impact time difference sensitivity in the scenario of hearing with cochlear implants. The biophysical changes that we implement in our model of AIS plasticity include enlargement of the AIS and replacement of low-threshold potassium conductance with the more slowly-activated M-type potassium conductance. AIS plasticity has been observed to have a homeostatic effect with respect to excitability. In our model, AIS plasticity has the additional effect of converting MSO neurons from phasic firing type to tonic firing type. Phasic firing is known to have greater temporal sensitivity to coincident inputs. Consistent with this, we find AIS plasticity degrades time difference sensitivity in the auditory deprived MSO neuron model across a range of stimulus parameters. Our study illustrates a possible mechanism of cellular plasticity in a non-peripheral stage of neural processing that could impose barriers to sound source localization by bilateral cochlear implant users.

听觉剥夺引起的轴突初始段可塑性降低了耳蜗植入神经反应模型的时差敏感性。
在听觉剥夺期间,突触和神经特性会发生变化。这些变化可能会扰乱神经元执行的计算。在鸡脑干中,听觉剥夺可导致声源定位回路神经元轴突初始段(AIS)的大小和生物物理特性发生变化。这就是轴突初始段可塑性现象。使用人工耳蜗(CIs)的个体会经历一段时间的听力损失,因此我们想知道,作为声音定位处理的关键阶段,内侧上橄榄(MSO)神经元的AIS可塑性是否会影响人工耳蜗听力情景下的时差敏感性。我们在AIS可塑性模型中实现的生物物理变化包括AIS的扩大和低阈值钾电导被激活更慢的m型钾电导所取代。AIS的可塑性已被观察到在兴奋性方面具有稳态效应。在我们的模型中,AIS可塑性具有将MSO神经元从相位放电型转化为强直放电型的附加效应。相位放电已知对同步输入具有更大的时间敏感性。与此一致,我们发现AIS可塑性在一系列刺激参数中降低了听觉剥夺MSO神经元模型的时差敏感性。我们的研究表明,在神经处理的非外周阶段,细胞可塑性可能会对双侧人工耳蜗使用者的声源定位造成障碍。
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来源期刊
CiteScore
2.00
自引率
8.30%
发文量
32
审稿时长
3 months
期刊介绍: The Journal of Computational Neuroscience provides a forum for papers that fit the interface between computational and experimental work in the neurosciences. The Journal of Computational Neuroscience publishes full length original papers, rapid communications and review articles describing theoretical and experimental work relevant to computations in the brain and nervous system. Papers that combine theoretical and experimental work are especially encouraged. Primarily theoretical papers should deal with issues of obvious relevance to biological nervous systems. Experimental papers should have implications for the computational function of the nervous system, and may report results using any of a variety of approaches including anatomy, electrophysiology, biophysics, imaging, and molecular biology. Papers investigating the physiological mechanisms underlying pathologies of the nervous system, or papers that report novel technologies of interest to researchers in computational neuroscience, including advances in neural data analysis methods yielding insights into the function of the nervous system, are also welcomed (in this case, methodological papers should include an application of the new method, exemplifying the insights that it yields).It is anticipated that all levels of analysis from cognitive to cellular will be represented in the Journal of Computational Neuroscience.
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