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Neurons in the inferior colliculus of the rat show stimulus-specific adaptation for frequency but not for intensity

机译:大鼠下丘神经元对频率有刺激特异性适应但对强度无刺激

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摘要

Electrophysiological and psychophysical responses to a low-intensity probe sound tend to be suppressed by a preceding high-intensity adaptor sound. Nevertheless, rare low-intensity deviant sounds presented among frequent high-intensity standard sounds in an intensity oddball paradigm can elicit an electroencephalographic mismatch negativity (MMN) response. This has been taken to suggest that the MMN is a correlate of true change or “deviance” detection. A key question is where in the ascending auditory pathway true deviance sensitivity first emerges. Here, we addressed this question by measuring low-intensity deviant responses from single units in the inferior colliculus (IC) of anesthetized rats. If the IC exhibits true deviance sensitivity to intensity, IC neurons should show enhanced responses to low-intensity deviant sounds presented among high-intensity standards. Contrary to this prediction, deviant responses were only enhanced when the standards and deviants differed in frequency. The results could be explained with a model assuming that IC neurons integrate over multiple frequency-tuned channels and that adaptation occurs within each channel independently. We used an adaptation paradigm with multiple repeated adaptors to measure the tuning widths of these adaption channels in relation to the neurons’ overall tuning widths.
机译:对低强度探针声音的电生理和心理生理反应倾向于被先前的高强度适配器声音抑制。然而,在强度奇数球范例中,在频繁的高强度标准声音中出现的罕见的低强度异常声音会引起脑电图失配负(MMN)反应。已经认为这是MMN是真实变化或“偏离”检测的关联。一个关键的问题是,在上升的听觉途径中,真正的偏离敏感性首先出现在哪里。在这里,我们通过测量麻醉大鼠下结肠(IC)中单个单元的低强度异常反应来解决这个问题。如果IC对强度表现出真正的偏差敏感性,则IC神经元应表现出对高强度标准中呈现的低强度异常声音的增强响应。与此预测相反,只有当标准和偏差频率不同时,偏差响应才会增强。可以用一个模型来解释结果,该模型假设IC神经元在多个频率调谐通道上集成,并且自适应独立地发生在每个通道内。我们使用了具有多个重复适配器的适应范例,以测量这些适应通道相对于神经元总体调节宽度的调节宽度。

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