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清醒南美栗鼠的无线耳蜗电图:在周边水平研究跨模态调制的模型。

Wireless electrocochleography in awake chinchillas: A model to study crossmodal modulations at the peripheral level.

机构信息

Departamento de Neurociencia, Facultad de Medicina, Universidad de Chile, Santiago, Chile.

Departamento de Neurociencia, Facultad de Medicina, Universidad de Chile, Santiago, Chile; Johns Hopkins School of Medicine, Otolaryngology-Head and Neck Surgery Department, Baltimore, MD 21231, USA; Biomedical Neuroscience Institute, Facultad de Medicina, Universidad de Chile, Santiago, Chile.

出版信息

Hear Res. 2024 Sep 15;451:109093. doi: 10.1016/j.heares.2024.109093. Epub 2024 Jul 28.

Abstract

The discovery and development of electrocochleography (ECochG) in animal models has been fundamental for its implementation in clinical audiology and neurotology. In our laboratory, the use of round-window ECochG recordings in chinchillas has allowed a better understanding of auditory efferent functioning. In previous works, we gave evidence of the corticofugal modulation of auditory-nerve and cochlear responses during visual attention and working memory. However, whether these cognitive top-down mechanisms to the most peripheral structures of the auditory pathway are also active during audiovisual crossmodal stimulation is unknown. Here, we introduce a new technique, wireless ECochG to record compound-action potentials of the auditory nerve (CAP), cochlear microphonics (CM), and round-window noise (RWN) in awake chinchillas during a paradigm of crossmodal (visual and auditory) stimulation. We compared ECochG data obtained from four awake chinchillas recorded with a wireless ECochG system with wired ECochG recordings from six anesthetized animals. Although ECochG experiments with the wireless system had a lower signal-to-noise ratio than wired recordings, their quality was sufficient to compare ECochG potentials in awake crossmodal conditions. We found non-significant differences in CAP and CM amplitudes in response to audiovisual stimulation compared to auditory stimulation alone (clicks and tones). On the other hand, spontaneous auditory-nerve activity (RWN) was modulated by visual crossmodal stimulation, suggesting that visual crossmodal simulation can modulate spontaneous but not evoked auditory-nerve activity. However, given the limited sample of 10 animals (4 wireless and 6 wired), these results should be interpreted cautiously. Future experiments are required to substantiate these conclusions. In addition, we introduce the use of wireless ECochG in animal models as a useful tool for translational research.

摘要

电 Cochleography (ECochG) 在动物模型中的发现和发展对于其在临床听力学和神经耳科学中的应用至关重要。在我们的实验室中,使用圆窗 ECochG 记录在南美栗鼠中允许更好地理解听觉传出功能。在以前的工作中,我们证明了在视觉注意和工作记忆期间听觉神经和耳蜗反应的皮质传出调制。然而,这些认知自上而下的机制是否也活跃在听觉途径的最外围结构中,在视听交叉模态刺激期间是未知的。在这里,我们引入了一种新的技术,即无线 ECochG,用于记录在视听交叉模态刺激期间清醒南美栗鼠的听觉神经复合动作电位 (CAP)、耳蜗微音 (CM) 和圆窗噪声 (RWN)。我们比较了使用无线 ECochG 系统从四只清醒南美栗鼠获得的 ECochG 数据与使用有线 ECochG 从六只麻醉动物获得的记录。尽管无线系统的 ECochG 实验的信噪比低于有线记录,但它们的质量足以在清醒的交叉模态条件下比较 ECochG 电位。我们发现,与单独听觉刺激相比,视听刺激对 CAP 和 CM 幅度的反应没有显著差异(点击和音调)。另一方面,听觉神经自发活动 (RWN) 被视觉交叉模态刺激调制,表明视觉交叉模态刺激可以调制自发的但不是诱发的听觉神经活动。然而,鉴于 10 只动物(4 只无线和 6 只有线)的有限样本,这些结果应谨慎解释。需要进一步的实验来证实这些结论。此外,我们介绍了在动物模型中使用无线 ECochG 作为转化研究的有用工具。

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