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首页> 外文期刊>Journal of Neurophysiology >Plasticity of bat's central auditory system evoked by focal electric stimulation of auditory and/or somatosensory cortices.
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Plasticity of bat's central auditory system evoked by focal electric stimulation of auditory and/or somatosensory cortices.

机译:蝙蝠中央听觉系统的可塑性是由听觉和/或体感皮层的局部电刺激引起的。

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Recent findings indicate that the corticofugal system would play an important role in cortical plasticity as well as collicular plasticity. To understand the role of the corticofugal system in plasticity, therefore, we studied the amount and the time course of plasticity in the inferior colliculus (IC) and auditory cortex (AC) evoked by focal electrical stimulation of the AC and also the effect of electrical stimulation of the somatosensory cortex on the plasticity evoked by the stimulation of the AC. In adult big brown bats (Eptesicus fuscus), we made the following major findings. 1) Electric stimulation of the AC evokes best frequency (BF) shifts, i.e., shifts in frequency-response curves of collicular and cortical neurons. These BF shifts start to occur within 2 min, reach a maximum (or plateau) at 30 min, and then recover approximately 180 min after a 30-min-long stimulus session. When the stimulus session is lengthened from 30 to 90 min, the plateau lasts approximately 60 min, but BF shifts recover approximately 180 min after the session. 2) The electric stimulation of the somatosensory cortex delivered immediately after that of the AC, as in fear conditioning, evokes a dramatic lengthening of the recovery period of the cortical BF shifts but not that of the collicular BF shift. The electric stimulation of the somatosensory cortex delivered before that of the AC, as in backward conditioning, has no effect on the collicular and cortical BF shifts. 3) Electric stimulation of the AC evokes BF shifts not only in the ipsilateral IC and AC but also in the contralateral IC and AC. BF shifts are smaller in amount and shorter in recovery time for contralateral collicular and cortical neurons than for ipsilateral ones. Our findings support the hypothesis that the AC and the corticofugal system have an intrinsic mechanism for reorganization of the IC and AC, that the reorganization is highly specific to a value of an acoustic parameter (frequency), and that the reorganization is augmented by excitation of nonauditory sensory cortex that makes the acoustic stimulus behaviorally relevant to the animal through associative learning.
机译:最近的发现表明,皮质干系统在皮质可塑性以及胶体可塑性中起重要作用。因此,为了了解皮质皮质系统在可塑性中的作用,我们研究了由局灶性电刺激引起的下丘脑(IC)和听觉皮层(AC)的可塑性数量和时间过程。刺激AC引起的体感皮层的可塑性。在成年大棕蝙蝠(Eptesicus fuscus)中,我们取得了以下主要发现。 1)AC的电刺激引起最佳频率(BF)偏移,即,胶体和皮层神经元的频率响应曲线发生偏移。这些BF变化在2分钟内开始发生,在30分钟达到最大值(或平稳),然后在30分钟长的刺激过程后约180分钟恢复。当刺激时段从30分钟延长至90分钟时,平稳期持续约60分钟,但BF偏移在该时段后恢复约180分钟。 2)像恐惧调节一样,在交流电之后立即递送的体感皮质的电刺激引起皮质BF移位恢复期的显着延长,而不是胶状BF移位恢复期的显着延长。如在向后调节中一样,在交流电之前传送的体感皮层的电刺激对胶体和皮质BF移位没有影响。 3)AC的电刺激不仅在同侧IC和AC中引起BF移动,而且在对侧IC和AC中引起BF移动。与对侧神经元和皮质神经元相比,对侧神经元和皮质神经元的BF移位量较小,恢复时间较短。我们的发现支持以下假设,即交流电和皮质神经系统具有IC和AC重组的内在机制,该重组对声学参数(频率)的值具有高度特定性,并且通过激发AC来增强重组非听觉感觉皮层,通过联想学习使声刺激在行为上与动物相关。

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