用多通道混合人工耳蜗植入小鼠耳蜗的空间精确激活。

IF 3.8
Ajmal A Azees, Alex C Thompson, Patrick Ruther, Elise A Ajay, Jenny Zhou, Ulises A Aregueta Robles, David J Garrett, Anita Quigley, James B Fallon, Rachael T Richardson
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引用次数: 0

摘要

目标。人工耳蜗是为数不多的对重度或重度听力损失患者的临床干预措施之一。然而,单极电刺激过程中的电流扩散导致光谱分辨率较差,促使人们探索光学刺激作为替代方法。通过将光敏离子通道引入听觉神经元(光遗传学),光学刺激已被证明可以激活一个更离散的神经区域,在同时刺激期间每个频率通道之间的重叠最小。然而,与电刺激相比,光遗传学方法的应用还不确定,因为对光和高功率要求的响应保真度较低。方法:混合刺激,结合亚阈值电脉冲和光脉冲,已被证明可以提高保真度并使用更少的光,但使用可翻译的多通道混合植入物对激活扩散和通道求和的影响尚不清楚。本研究在表达ChR2/H134R视蛋白的转基因小鼠的单通道和同时多通道杂交刺激中检测了这些因素。急性耳聋小鼠植入了一个混合耳蜗阵列,其中包含交流发光二极管和铂电极环。在仅电刺激或混合刺激(光和电刺激均处于阈下强度)时,记录下下丘的尖峰活动。同时进行混合刺激时的阈值、激活范围和阈值变化与单纯电刺激时的阈值变化进行了比较。主要的结果。与单纯电刺激相比,混合刺激达到激活阈值所需的电流降低了7.3 dB (p< 0.001)。同时混合刺激在阈值以上判别和通道叠加两种水平下的激活宽度均显著低于单电刺激(p< 0.05),但在高电刺激水平下混合刺激不存在空间优势。从而增强对时间精细结构的感知,这对噪音中的音乐和言语至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spatially precise activation of the mouse cochlea with a multi-channel hybrid cochlear implant.

Objective.Cochlear implants are among the few clinical interventions for people with severe or profound hearing loss. However, current spread during monopolar electrical stimulation results in poor spectral resolution, prompting the exploration of optical stimulation as an alternative approach. Enabled by introducing light-sensitive ion channels into auditory neurons (optogenetics), optical stimulation has been shown to activate a more discrete neural area with minimal overlap between each frequency channel during simultaneous stimulation. However, the utility of optogenetic approaches is uncertain due to the low fidelity of responses to light and high-power requirements compared to electrical stimulation.Approach.Hybrid stimulation, combining sub-threshold electrical and optical pulses, has been shown to improve fidelity and use less light, but the impact on spread of activation and channel summation using a translatable, multi-channel hybrid implant is unknown. This study examined these factors during single channel and simultaneous multi-channel hybrid stimulation in transgenic mice expressing the ChR2/H134R opsin. Acutely deafened mice were implanted with a hybrid cochlear array containing alternating light emitting diodes and platinum electrode rings. Spiking activity in the inferior colliculus was recorded during electrical-only or hybrid stimulation in which optical and electrical stimuli were both at sub-threshold intensities. Thresholds, spread of activation, and threshold shifts during simultaneous hybrid stimulation were compared to electrical-only stimulation.Main results.The electrical current required to reach activation threshold during hybrid stimulation was reduced by 7.3 dB compared to electrical-only stimulation (p< 0.001). The activation width measured at two levels of discrimination above threshold and channel summation during simultaneous hybrid stimulation were significantly lower compared to electrical-only stimulation (p< 0.05), but there was no spatial advantage of hybrid stimulation at higher electrical stimulation levels.Significance.Reduced channel interaction would facilitate multi-channel simultaneous stimulation, thereby enhancing the perception of temporal fine structure which is crucial for music and speech in noise.

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