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Neural Circuits: Frequency tuning of synaptic inhibition underlying duration-tuned neurons in the mammalian inferior colliculus

机译:神经回路:频率调节的哺乳动物下丘的持续时间调谐神经元的突触抑制。

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摘要

Inhibition plays an important role in creating the temporal response properties of duration-tuned neurons (DTNs) in the mammalian inferior colliculus (IC). Neurophysiological and computational studies indicate that duration selectivity in the IC is created through the convergence of excitatory and inhibitory synaptic inputs offset in time. We used paired-tone stimulation and extracellular recording to measure the frequency tuning of the inhibition acting on DTNs in the IC of the big brown bat (Eptesicus fuscus). We stimulated DTNs with pairs of tones differing in duration, onset time, and frequency. The onset time of a short, best-duration (BD), probe tone set to the best excitatory frequency (BEF) was varied relative to the onset of a longer-duration, nonexcitatory (NE) tone whose frequency was varied. When the NE tone frequency was near or within the cell’s excitatory bandwidth (eBW), BD tone-evoked spikes were suppressed by an onset-evoked inhibition. The onset of the spike suppression was independent of stimulus frequency, but both the offset and duration of the suppression decreased as the NE tone frequency departed from the BEF. We measured the inhibitory frequency response area, best inhibitory frequency (BIF), and inhibitory bandwidth (iBW) of each cell. We found that the BIF closely matched the BEF, but the iBW was broader and usually overlapped the eBW measured from the same cell. These data suggest that temporal selectivity of midbrain DTNs is created and preserved by having cells receive an onset-evoked, constant-latency, broadband inhibition that largely overlaps the cell’s excitatory receptive field. We conclude by discussing possible neural sources of the inhibition.>NEW & NOTEWORTHY Duration-tuned neurons (DTNs) arise from temporally offset excitatory and inhibitory synaptic inputs. We used single-unit recording and paired-tone stimulation to measure the spectral tuning of the inhibitory inputs to DTNs. The onset of inhibition was independent of stimulus frequency; the offset and duration of inhibition systematically decreased as the stimulus departed from the cell’s best excitatory frequency. Best inhibitory frequencies matched best excitatory frequencies; however, inhibitory bandwidths were more broadly tuned than excitatory bandwidths.
机译:抑制作用在哺乳动物下丘脑(IC)中创建持续时间调谐神经元(DTN)的时间响应特性中起着重要作用。神经生理学和计算研究表明,IC的持续时间选择性是通过兴奋性和抑制性突触输入的时间偏移而产生的。我们使用配对音调刺激和细胞外录音来测量对大棕蝙蝠(Eptesicus fuscus)IC中DTN抑制作用的频率调节。我们用持续时间,发作时间和频率不同的成对音调刺激DTN。设置为最佳兴奋频率(BEF)的最短持续时间(BD)探测音的开始时间相对于频率变化的较长持续时间,非兴奋(NE)音的开始时间有所不同。当NE音调频率接近或接近细胞的兴奋性带宽(eBW)时,BD音调诱发的尖峰会被发作诱发的抑制作用抑制。尖峰抑制的开始与刺激频率无关,但是随着NE音调频率从BEF偏离,抑制的偏移和持续时间均减小。我们测量了每个细胞的抑制频率响应区域,最佳抑制频率(BIF)和抑制带宽(iBW)。我们发现BIF与BEF紧密匹配,但iBW较宽,通常与从同一单元格测得的eBW重叠。这些数据表明,中脑DTN的时间选择性是通过使细胞受到起效的,恒定潜伏期的宽带抑制作用而产生并保留的,该抑制作用与细胞的兴奋性感受野大体重叠。最后,我们讨论了抑制作用的可能神经源。>新的和值得注意的持续时间调整的神经元(DTN)来自时间偏移的兴奋性和抑制性突触输入。我们使用单单元记录和配对音调刺激来测量DTN抑制输入的频谱调整。抑制作用的发生与刺激频率无关。随着刺激偏离细胞的最佳兴奋频率,抑制作用的抵消和抑制作用的时间会系统地减少。最佳抑制频率与最佳兴奋频率匹配;但是,抑制带宽比兴奋性带宽更广泛地进行了调整。

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