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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Generation of intensity selectivity by differential synaptic tuning: Fast-saturating excitation but slow-saturating inhibition
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Generation of intensity selectivity by differential synaptic tuning: Fast-saturating excitation but slow-saturating inhibition

机译:通过微分突触调整产生强度选择性:快饱和激发但慢饱和抑制

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摘要

Intensity defines one fundamental aspect of sensory information and is specifically represented in each sensory modality. Interestingly, only in the central auditory system are intensity-selective neurons evolved. These neurons are characterized by nonmonotonic responselevel functions. The synaptic circuitry mechanisms underlying the generation of intensity selectivity from nonselective auditory nerve inputs remain largely unclear. Here, we performed in vivo whole-cell recordings from pyramidal neurons in the rat dorsal cochlear nucleus (DCN), where intensity selectivity first emerges along the auditory neuraxis. Our results revealed that intensity-selective cells received fast-saturating excitation but slow-saturating inhibition with intensity increments, whereas in intensity-nonselective cells excitation and inhibition were similarly slow-saturating. The differential intensity tuning profiles of the monotonic excitation and inhibition qualitatively determined the intensity selectivity of output responses. In addition, the selectivity was further strengthened by significantly lower excitation/inhibition ratios at high-intensity levels compared with intensity-nonselective neurons. Our results demonstrate that intensity selectivity in the DCN is generated by extracting the difference between tuning profiles of nonselective excitatory and inhibitory inputs, which we propose can be achieved through a differential circuit mediated by feedforward inhibition.
机译:强度定义了感官信息的一个基本方面,并在每种感官模态中具体表示。有趣的是,仅在中央听觉系统中会进化出强度选择神经元。这些神经元的特征在于非单调的响应水平功能。从非选择性听神经输入产生强度选择性的突触电路机制仍不清楚。在这里,我们从大鼠背侧耳蜗核(DCN)中的锥体神经元进行了体内全细胞记录,其中强度选择性首先沿听神经发生。我们的研究结果表明,强度选择细胞受到快速饱和的激发,但随着强度的增加而受到缓慢饱和的抑制,而强度非选择性细胞的激发和抑制同样具有缓慢的饱和。单调激发和抑制的不同强度调整曲线定性地确定了输出响应的强度选择性。此外,与高强度非选择性神经元相比,高强度水平的激发/抑制比明显更低,进一步增强了选择性。我们的结果表明,DCN中的强度选择性是通过提取非选择性兴奋性输入和抑制性输入的调整曲线之间的差异来生成的,我们提出这可以通过前馈抑制介导的差分电路来实现。

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