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双侧丘系间相互作用:对幅度域听觉信号处理的调制。

Bilateral collicular interaction: modulation of auditory signal processing in amplitude domain.

机构信息

College of Life sciences and Hubei Key Lab of Genetic Regulation and Integrative Biology, Central China Normal University, Wuhan, Hubei, China.

出版信息

PLoS One. 2012;7(7):e41311. doi: 10.1371/journal.pone.0041311. Epub 2012 Jul 24.

Abstract

In the ascending auditory pathway, the inferior colliculus (IC) receives and integrates excitatory and inhibitory inputs from many lower auditory nuclei, intrinsic projections within the IC, contralateral IC through the commissure of the IC and from the auditory cortex. All these connections make the IC a major center for subcortical temporal and spectral integration of auditory information. In this study, we examine bilateral collicular interaction in modulating amplitude-domain signal processing using electrophysiological recording, acoustic and focal electrical stimulation. Focal electrical stimulation of one (ipsilateral) IC produces widespread inhibition (61.6%) and focused facilitation (9.1%) of responses of neurons in the other (contralateral) IC, while 29.3% of the neurons were not affected. Bilateral collicular interaction produces a decrease in the response magnitude and an increase in the response latency of inhibited IC neurons but produces opposite effects on the response of facilitated IC neurons. These two groups of neurons are not separately located and are tonotopically organized within the IC. The modulation effect is most effective at low sound level and is dependent upon the interval between the acoustic and electric stimuli. The focal electrical stimulation of the ipsilateral IC compresses or expands the rate-level functions of contralateral IC neurons. The focal electrical stimulation also produces a shift in the minimum threshold and dynamic range of contralateral IC neurons for as long as 150 minutes. The degree of bilateral collicular interaction is dependent upon the difference in the best frequency between the electrically stimulated IC neurons and modulated IC neurons. These data suggest that bilateral collicular interaction mainly changes the ratio between excitation and inhibition during signal processing so as to sharpen the amplitude sensitivity of IC neurons. Bilateral interaction may be also involved in acoustic-experience-dependent plasticity in the IC. Three possible neural pathways underlying the bilateral collicular interaction are discussed.

摘要

在听觉上行通路中,下丘(IC)接收和整合来自许多较低听觉核、IC 内的固有投射、对侧 IC 通过 IC 连合以及听觉皮层的兴奋性和抑制性输入。所有这些连接使 IC 成为亚皮质听觉信息的时间和频谱整合的主要中心。在这项研究中,我们使用电生理记录、声学和焦点电刺激来研究双侧丘间相互作用在调制幅度域信号处理中的作用。对一侧(同侧)IC 的焦点电刺激产生对另一侧(对侧)IC 神经元反应的广泛抑制(61.6%)和集中促进(9.1%),而 29.3%的神经元不受影响。双侧丘间相互作用导致受抑制 IC 神经元的反应幅度减小和反应潜伏期增加,但对促进 IC 神经元的反应产生相反的影响。这两组神经元不是分别定位的,而是在 IC 内按音调组织的。调制效应在低音量时最有效,并且取决于声电刺激之间的间隔。同侧 IC 的焦点电刺激压缩或扩展对侧 IC 神经元的率-级函数。焦点电刺激还导致对侧 IC 神经元的最小阈值和动态范围发生长达 150 分钟的移位。双侧丘间相互作用的程度取决于电刺激 IC 神经元和调制 IC 神经元之间最佳频率的差异。这些数据表明,双侧丘间相互作用主要通过改变信号处理过程中的兴奋和抑制之间的比率来改变 IC 神经元的幅度敏感性。双侧相互作用也可能参与 IC 中的声经验依赖性可塑性。讨论了三种可能的双侧丘间相互作用的神经通路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c02a/3404052/83513dd8a2ce/pone.0041311.g001.jpg

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