[清醒小鼠丘脑网状核的听觉反应]。

Q3 Medicine Acta physiologica Sinica Pub Date : 2023-06-25
Yu-Hua Li, Chang-Bao Song, Fei-Xue Liang
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引用次数: 0

摘要

本研究旨在探讨清醒小鼠丘脑网状核(TRN)在听觉信息加工过程中的听觉反应特征,从而加深对TRN的认识,探索其在听觉系统中的作用。通过对18只SPF C57BL/6J小鼠TRN神经元的体内电生理单细胞贴壁记录,观察了314个记录神经元对噪声和音调两种听觉刺激的反应。结果表明,TRN接收到初级听觉皮层(A1)第六层的投射。在314个TRN神经元中,56.05%的神经元对噪音有反应,21.02%的神经元只对噪音有反应,22.93%的神经元对噪音和音调都有反应。噪声响应神经元根据响应时间可分为起效型、持续型和持久型三种模式,分别占73.19%、14.49%和12.32%。维持模式神经元的反应阈值低于其他两种神经元。与A1 6层相比,噪声刺激下TRN神经元听觉反应不稳定(P < 0.001),自发放电率升高(P < 0.001),反应潜伏期延长(P < 0.001)。在音调刺激下,TRN的响应连续性较差,频率调谐与A1六层差异较大(P < 0.001),但对音调的敏感性相近(P > 0.05), TRN的音调响应阈值远高于A1六层(P < 0.001)。以上结果表明,TRN在听觉系统中主要承担信息传递的任务。TRN的噪声响应比音调响应更广泛。一般来说,TRN更倾向于高强度的声刺激。
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[Auditory response of the reticular nucleus of thalamus in awake mice].

This study aims to explore the auditory response characteristics of the thalamic reticular nucleus (TRN) in awake mice during auditory information processing, so as to deepen the understanding of TRN and explore its role in the auditory system. By in vivo electrophysiological single cell attached recording of TRN neurons in 18 SPF C57BL/6J mice, we observed the responses of 314 recorded neurons to two kinds of auditory stimuli, noise and tone, applied to mice. The results showed that TRN received projections from layer six of the primary auditory cortex (A1). Among 314 TRN neurons, 56.05% responded silently, 21.02% responded only to noise and 22.93% responded to both noise and tone. The neurons with noise response can be divided into three patterns according to their response time: onset, sustain and long-lasting, accounting for 73.19%, 14.49% and 12.32%, respectively. The response threshold of the sustain pattern neurons was lower than those of the other two types. Under noise stimulation, compared with A1 layer six, TRN neurons showed unstable auditory response (P < 0.001), higher spontaneous firing rate (P < 0.001), and longer response latency (P < 0.001). Under tone stimulation, TRN's response continuity was poor, and the frequency tuning was greatly different from that of A1 layer six (P < 0.001), but their sensitivity to tone was similar (P > 0.05), and TRN's tone response threshold was much higher than that of A1 layer six (P < 0.001). The above results demonstrate that TRN mainly undertakes the task of information transmission in the auditory system. The noise response of TRN is more extensive than the tone response. Generally, TRN prefers high-intensity acoustic stimulation.

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来源期刊
Acta physiologica Sinica
Acta physiologica Sinica Medicine-Medicine (all)
CiteScore
1.20
自引率
0.00%
发文量
4820
期刊介绍: Acta Physiologica Sinica (APS) is sponsored by the Chinese Association for Physiological Sciences and Shanghai Institutes of Biological Sciences, Chinese Academy of Sciences (CAS), and is published bimonthly by the Science Press, China. APS publishes original research articles in the field of physiology as well as research contributions from other biomedical disciplines and proceedings of conferences and symposia of physiological sciences. Besides “Original Research Articles”, the journal also provides columns as “Brief Review”, “Rapid Communication”, “Experimental Technique”, and “Letter to the Editor”. Articles are published in either Chinese or English according to authors’ submission.
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