University of Texas, Austin, TX 78712, USA.
J Neurosci. 2012 Feb 22;32(8):2814-23. doi: 10.1523/JNEUROSCI.3882-11.2012.
In sensory circuits of the brain, developmental changes in the expression and modulation of voltage-gated ion channels are a common occurrence, but such changes are often difficult to assign to clear functional roles. We have explored this issue in the binaural neurons of the medial superior olive (MSO), whose temporal precision in detecting the coincidence of binaural inputs dictates the resolution of azimuthal sound localization. We show that in MSO principal neurons of gerbils during the first week of hearing, a hyperpolarization-activated current (I(h)) progressively undergoes a 13-fold increase in maximal conductance, a >10-fold acceleration of kinetics, and, most surprisingly, a 30 mV depolarizing shift in the voltage dependence of activation. This period is associated with an upregulation of the hyperpolarization-activated and cyclic nucleotide-gated (HCN) channel subunits HCN1, HCN2, and HCN4 in the MSO, but only HCN1 and HCN4 were expressed strongly in principal neurons. I(h) recorded in nucleated patches from electrophysiologically mature MSO neurons (>P18) exhibited kinetics and an activation range nearly identical to the I(h) found in whole-cell recordings before hearing onset. These results indicate that the developmental changes in I(h) in MSO neurons can be explained predominantly by modulation from diffusible intracellular factors, and not changes in channel subunit composition. The exceptionally large modulatory changes in I(h), together with refinements in synaptic properties transform the coding strategy from one of summation and integration to the submillisecond coincidence detection known to be required for transmission of sound localization cues.
在大脑的感觉回路中,电压门控离子通道的表达和调制的发育变化是很常见的,但这些变化往往很难归因于明确的功能作用。我们在中内侧橄榄核(MSO)的双极神经元中探索了这个问题,其在检测双极输入偶合方面的时间精度决定了方位声音定位的分辨率。我们表明,在听觉第一周的沙鼠 MSO 主神经元中,超极化激活电流(I(h))的最大电导逐渐增加了 13 倍,动力学加速了 >10 倍,最令人惊讶的是,激活的电压依赖性发生了 30 mV 的去极化偏移。这一时期与 MSO 中的超极化激活和环核苷酸门控(HCN)通道亚基 HCN1、HCN2 和 HCN4 的上调有关,但只有 HCN1 和 HCN4 在主神经元中表达强烈。在电生理成熟的 MSO 神经元(>P18)从核膜片钳记录的 I(h)表现出的动力学和激活范围与听觉前记录的全细胞记录中的 I(h)几乎相同。这些结果表明,MSO 神经元中 I(h)的发育变化主要可以通过可扩散的细胞内因子的调制来解释,而不是通道亚基组成的变化。I(h)的调制变化非常大,加上突触特性的改进,将编码策略从求和和积分转变为亚毫秒级的偶合检测,这是已知的声音定位线索传输所必需的。