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本文引用的文献

1
Responses of inferior colliculus neurons to SAM tones located in inhibitory response areas.下丘神经元对位于抑制反应区域的SAM音调的反应。
Hear Res. 2006 Oct;220(1-2):116-25. doi: 10.1016/j.heares.2006.07.012. Epub 2006 Sep 1.
2
A phenomenological model of peripheral and central neural responses to amplitude-modulated tones.一种针对调幅音的外周和中枢神经反应的现象学模型。
J Acoust Soc Am. 2004 Oct;116(4 Pt 1):2173-86. doi: 10.1121/1.1784442.
3
Responses of auditory nerve fibers to harmonic and mistuned complex tones.听神经纤维对谐波和失谐复合音的反应。
Hear Res. 2003 Aug;182(1-2):130-9. doi: 10.1016/s0378-5955(03)00189-8.
4
Responses of chinchilla inferior colliculus neurons to amplitude-modulated tones with different envelopes.灰鼠下丘神经元对具有不同包络的调幅音的反应。
J Assoc Res Otolaryngol. 2002 Dec;3(4):390-402. doi: 10.1007/s101620020026. Epub 2002 Feb 27.
5
Adaptation and inhibition underlie responses to time-varying interaural phase cues in a model of inferior colliculus neurons.在一个下丘神经元模型中,适应和抑制是对随时间变化的双耳相位线索作出反应的基础。
J Neurophysiol. 2002 Oct;88(4):2134-46. doi: 10.1152/jn.2002.88.4.2134.
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Responses of inferior colliculus neurons to harmonic and mistuned complex tones.下丘神经元对谐波和失谐复合音的反应。
Hear Res. 2002 Jun;168(1-2):150-62. doi: 10.1016/s0378-5955(02)00366-0.
7
Iontophoresis in vivo demonstrates a key role for GABA(A) and glycinergic inhibition in shaping frequency response areas in the inferior colliculus of guinea pig.体内离子电渗疗法证明了GABA(A)和甘氨酸能抑制在塑造豚鼠下丘频率反应区域中的关键作用。
J Neurosci. 2001 Sep 15;21(18):7303-12. doi: 10.1523/JNEUROSCI.21-18-07303.2001.
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Reversible inactivation of the dorsal nucleus of the lateral lemniscus reveals its role in the processing of multiple sound sources in the inferior colliculus of bats.外侧丘系背核的可逆失活揭示了其在蝙蝠下丘对多个声源处理中的作用。
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Auditory temporal processing: responses to sinusoidally amplitude-modulated tones in the inferior colliculus.听觉时间处理:下丘对正弦调幅音的反应。
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Monaural response properties of single neurons in the chinchilla inferior colliculus.
Hear Res. 1999 May;131(1-2):89-106. doi: 10.1016/s0378-5955(99)00023-4.

下丘对失谐复合音刻板反应的发生率。

Prevalence of stereotypical responses to mistuned complex tones in the inferior colliculus.

作者信息

Sinex Donal G, Li Hongzhe, Velenovsky David S

机构信息

Utah State University, Department of Speech and Hearing Science, 2810 Old Main Hill, Logan, UT 84322-2810, USA.

出版信息

J Neurophysiol. 2005 Nov;94(5):3523-37. doi: 10.1152/jn.01194.2004. Epub 2005 Aug 3.

DOI:10.1152/jn.01194.2004
PMID:16079190
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2533264/
Abstract

The human auditory system has an exceptional ability to separate competing sounds, but the neural mechanisms that underlie this ability are not understood. Responses of inferior colliculus (IC) neurons to "mistuned" complex tones were measured to investigate possible neural mechanisms for spectral segregation. A mistuned tone is a harmonic complex tone in which the frequency of one component has been changed; that component may be heard as a separate sound source, suggesting that the mistuned tone engages the same mechanisms that contribute to the segregation of natural sounds. In this study, the harmonic tone consisted of eight harmonics of 250 Hz; in the mistuned tone, the frequency of the fourth harmonic was increased by 12% (120 Hz). The mistuned tone elicited a stereotypical discharge pattern, consisting of peaks separated by about 8 ms and a response envelope modulated with a period of 100 ms, which bore little resemblance to the discharge pattern elicited by the harmonic tone or to the stimulus waveform. Similar discharge patterns were elicited from many neurons with a range of characteristic frequencies, especially from neurons that exhibited short-latency sustained responses to pure tones. In contrast, transient and long-latency neurons usually did not exhibit the stereotypical discharge pattern. The discharge pattern was generally stable when the stimulus level or component phase was varied; the major effect of these manipulations was to shift the phase of the response envelope. Simulation of IC responses with a computational model suggested that off-frequency inhibition could produce discharge patterns with these characteristics.

摘要

人类听觉系统具有非凡的能力来分离相互竞争的声音,但其背后的神经机制尚不清楚。为了研究频谱分离可能的神经机制,测量了下丘(IC)神经元对“失谐”复合音的反应。失谐音是一种谐波复合音,其中一个成分的频率发生了变化;该成分可能被听成一个单独的声源,这表明失谐音激活了与自然声音分离相同的机制。在本研究中,谐波音由250 Hz的八个谐波组成;在失谐音中,第四个谐波的频率增加了12%(120 Hz)。失谐音引发了一种刻板的放电模式,由间隔约8 ms的峰值和以100 ms为周期调制的反应包络组成,这与谐波音引发的放电模式或刺激波形几乎没有相似之处。许多具有不同特征频率的神经元,特别是那些对纯音表现出短潜伏期持续反应的神经元,都引发了类似的放电模式。相比之下,瞬态和长潜伏期神经元通常不表现出这种刻板的放电模式。当刺激水平或成分相位改变时,放电模式通常是稳定的;这些操作的主要影响是使反应包络的相位发生偏移。用计算模型对IC反应进行模拟表明,偏离频率抑制可以产生具有这些特征的放电模式。