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Medial Superior Olivary Neurons Receive Surprisingly Few Excitatory and Inhibitory Inputs with Balanced Strength and Short-Term Dynamics

机译:内侧高级橄榄神经元通过平衡强度和短期动力学获得惊人的少量兴奋和抑制性输入

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摘要

Neurons in the medial superior olive (MSO) process microsecond interaural time differences, the major cue for localizing low-frequency sounds, by comparing the relative arrival time of binaural, glutamatergic excitatory inputs. This coincidence detection mechanism is additionally shaped by highly specialized glycinergic inhibition. Traditionally, it is assumed that the binaural inputs are conveyed by many independent fibers, but such an anatomical arrangement may decrease temporal precision. Short-term depression on the other hand might enhance temporal fidelity during ongoing activity. For the first time we show that binaural coincidence detection in MSO neurons may require surprisingly few but strong inputs, challenging long-held assumptions about mammalian coincidence detection. This study exclusively uses adult gerbils for in vitro electrophysiology, single-cell electroporation and immunohistochemistry to characterize the size and short-term plasticity of inputs to the MSO. We find that the excitatory and inhibitory inputs to the MSO are well balanced both in strength and short-term dynamics, redefining this fastest of all mammalian coincidence detector circuits.
机译:通过比较双耳,谷氨酸能兴奋性输入的相对到达时间,内侧上橄榄(MSO)中的神经元处理微秒耳间时间差异,这是定位低频声音的主要提示。该重合检测机制还通过高度专门化的甘氨酸抑制来形成。传统上,假设双耳输入是由许多独立的纤维传输的,但是这种解剖结构可能会降低时间精度。另一方面,短期抑郁可能会在进行中的活动中增强时间保真度。第一次,我们证明了MSO神经元中的双耳重合检测可能需要很少但强大的输入,这挑战了有关哺乳动物重合检测的长期存在的假设。这项研究专门将成年沙鼠用于体外电生理学,单细胞电穿孔和免疫组织化学,以表征MSO投入物的大小和短期可塑性。我们发现,MSO的兴奋性和抑制性输入在强度和短期动力学上都很好地平衡了,重新定义了所有哺乳动物符合检测器电路中最快的一种。

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