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Reorganization of the cochleotopic map in the bat's auditory system by inhibition

机译:通过抑制重组蝙蝠听觉系统中的耳蜗图

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The central auditory system of the mustached bat shows two types of reorganization of cochleotopic (frequency) maps: expanded reorganization resulting from shifts in the best frequencies (BFs) of neurons toward the BF of repetitively stimulated cortical neurons (hereafter centripetal BF shifts) and compressed reorganization resulting from the BF shifts of neurons away from the BF of the stimulated cortical neurons (hereafter centrifugal BF shifts). Facilitation and inhibition evoked by the corticofugal system have been hypothesized to be respectively related to centripetal and centrifugal BF shifts. If this hypothesis is correct, bicuculline (an antagonist of inhibitory GABA-A receptors) applied to cortical neurons would change centrifugal BF shifts into centripetal BF shifts. In the mustached bat, electric stimulation of cortical Doppler-shifted constant-frequency neurons, which are highly specialized for frequency analysis, evokes the centrifugal BF shifts of ipsilateral collicular and cortical Doppler-shifted constant-frequency neurons and contralateral cochlear hair cells. Bicuculline applied to the stimulation site changed the centrifugal BF shifts into centripetal BF shifts. On the other hand, electric stimulation of neurons in the posterior division of the auditory cortex, which are not particularly specialized for frequency analysis, evokes centripetal BF shifts of cortical neurons located near the stimulated cortical neurons. Bicuculline applied to the stimulation site augmented centripetal BF shifts but did not change the direction of the shifts. These observations support the hypothesis and indicate that centripetal and centrifugal BF shifts are both based on a single mechanism consisting of two components: facilitation and inhibition.
机译:胡子蝙蝠的中央听觉系统显示耳蜗图的两种重组(频率):神经元的最佳频率(BFs)向反复刺激的皮质神经元的BF(此后向心BF移位)和压缩的神经元的最佳频率(BFs)移位导致的扩展重组。由神经元的BF移位远离刺激的皮层神经元的BF导致的重组(此后称为离心BF移位)。假设皮质皮质系统引起的促进和抑制分别与向心和离心BF移位有关。如果这一假设正确,则应用于皮质神经元的双小分子(抑制性GABA-A受体的拮抗剂)会将离心BF转变为向心BF转变。在有胡子的蝙蝠中,高度专用于频率分析的皮质多普勒频移恒定频率神经元的电刺激引起了同侧胶质和皮质多普勒频移恒定频率神经元以及对侧耳蜗毛细胞的离心BF移位。施加于刺激部位的双瓜林将离心BF转变为向心BF转变。另一方面,对听觉皮层后部神经元的电刺激(不是专门用于频率分析)会引起位于受刺激的皮层神经元附近的皮层神经元的向心BF移位。 Bicuculline应用于刺激部位增加了向心BF移位,但没有改变移位的方向。这些观察结果支持该假设,并表明向心和离心BF移位均基于由两个部分组成的单一机制:促进和抑制。

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