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首页> 外文期刊>Journal of Neural Transplantation and Plasticity: Neural Plasticity >The Influence of Cochlear Implant-Based Electric Stimulation on the Electrophysiological Characteristics of Cultured Spiral Ganglion Neurons
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The Influence of Cochlear Implant-Based Electric Stimulation on the Electrophysiological Characteristics of Cultured Spiral Ganglion Neurons

机译:基于耳蜗植入植入植入螺旋神经节神经元电生理特性的影响

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Background. Cochlear implant-based electrical stimulation may be an important reason to induce the residual hearing loss after cochlear implantation. In our previous study, we found that charge-balanced biphasic electrical stimulation inhibited the neurite growth of spiral ganglion neurons (SGNs) and decreased Schwann cell density in vitro. In this study, we want to know whether cochlear implant-based electrical stimulation can induce the change of electrical activity in cultured SGNs. Methods. Spiral ganglion neuron electrical stimulation in vitro model is established using the devices delivering cochlear implant-based electrical stimulation. After 48?h treatment by 50?μA or 100?μA electrical stimulation, the action potential (AP) and voltage depended calcium current (ICa) of SGNs are recorded using whole-cell electrophysiological method. Results. The results show that the ICa of SGNs is decreased significantly in 50?μA and 100?μA electrical stimulation groups. The reversal potential of ICa is nearly +80?mV in control SGN, but the reversal potential decreases to +50?mV in 50?μA and 100?μA electrical stimulation groups. Interestingly, the AP amplitude, the AP latency, and the AP duration of SGNs have no statistically significant differences in all three groups. Conclusion. Our study suggests cochlear implant-based electrical stimulation only significantly inhibit the ICa of cultured SGNs but has no effect on the firing of AP, and the relation of ICa inhibition and SGN damage induced by electrical stimulation and its mechanism needs to be further studied.
机译:背景。基于耳蜗植入的电刺激可能是触发耳蜗植入后诱导残余听力损失的重要原因。在我们以前的研究中,我们发现电荷平衡的双相电刺激抑制了螺旋神经节神经元(SGNS)的神经突生长,并且在体外降低了施旺细胞密度。在这项研究中,我们想知道基于耳蜗植入的电刺激是否可以诱导培养的SGNS中电活性的变化。方法。螺旋神经节神经元在体外模型中的电气刺激是使用助耳植入基于耳蜗的电刺激的装置建立的。在48μA或100μA电刺激处理后,使用全细胞电生理方法记录SGN的动作电位(AP)和电压依赖钙电流(ICA)。结果。结果表明,SGNS的ICA在50℃和100μA电刺激组中显着降低。控制SGN的ICA的反转电位接近+80?MV,但反转电位在50ΩμA和100​​Ω电刺激组中降至+ 50°MV。有趣的是,AP幅度,AP潜伏期和SGN的AP持续时间在所有三个组中没有统计学上显着的差异。结论。我们的研究表明,基于耳蜗植入的电刺激显着抑制培养的SGNS的ICA,但对AP的烧制没有影响,并且需要进一步研究ICA抑制和ICA抑制和SGN损伤的关系及其机制。

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