Needham Karina, Paolini Antonio G
Department of Otolaryngology, The University of Melbourne, and The Bionic Ear Institute, 384-388 Albert Street, East Melbourne, Victoria 3002, Australia.
Brain Res. 2007 Feb 23;1134(1):113-21. doi: 10.1016/j.brainres.2006.11.058. Epub 2006 Dec 18.
A direct commissural connection formed between cochlear nuclei allows information from the contralateral ear to rapidly influence the processing of the ascending auditory signal. Among the neuronal groups proposed to both receive, and contribute to, commissural input is the bushy cell population in the ventral cochlear nucleus (VCN). In this in vivo electrophysiological study we examine the intracellular recordings of bushy neurons during electrical stimulation of the contralateral cochlear nucleus (CN) for evidence of both their contribution to, and input from commissural projections. Activation of the commissural pathway revealed short-latency fast hyperpolarisation in 19.5% of the 41 bushy neurons examined. The hyperpolarising potentials were small in amplitude, displayed a highly variable time course between neurons, and in some cases were eliminated with injection of depolarising current. There was no indication of antidromic activity, or short-latency excitatory potentials. These results suggest that i) bushy neurons do not contribute projections to the commissural connection, and ii) a small portion of bushy neurons are hyperpolarised following commissural stimulation.
耳蜗核之间形成的直接连合连接,使来自对侧耳的信息能够迅速影响上行听觉信号的处理。在被认为既接受连合输入又对其有贡献的神经元群中,有腹侧耳蜗核(VCN)中的浓密细胞群。在这项体内电生理研究中,我们检查了在对侧耳蜗核(CN)电刺激期间浓密神经元的细胞内记录,以寻找它们对连合投射的贡献以及来自连合投射的输入的证据。连合通路的激活在41个被检查的浓密神经元中的19.5%中揭示了短潜伏期快速超极化。超极化电位幅度较小,在神经元之间显示出高度可变的时间进程,并且在某些情况下通过注入去极化电流而消除。没有出现逆向活动或短潜伏期兴奋性电位的迹象。这些结果表明:i)浓密神经元不向连合连接投射;ii)一小部分浓密神经元在连合刺激后发生超极化。