Neubauer Heinrich, Heil Peter
Leibniz Institute for Neurobiology, Brenneckestrasse 6, 39118 Magdeburg, Germany.
Brain Res. 2008 Jul 18;1220:208-23. doi: 10.1016/j.brainres.2007.08.081. Epub 2007 Sep 14.
Recent studies have shown a close correspondence between perceptual detection thresholds for sounds in quiet and a measure of neuronal thresholds derived from the stimulus-dependent timing of the first spike of auditory-nerve fibers. In addition, stimulus properties might be encoded by differences in first-spike timing of neurons in the central auditory system. Therefore, the physiological mechanisms underlying first-spike timing are of considerable interest, but are not thoroughly understood. Here, we present a physiological model which accurately explains the observed stimulus dependence of the first-spike latency of auditory-nerve fibers with a minimum number of physiologically plausible parameters. Two of the 5 parameters can be considered constant (at least for the vast majority of fibers), while the other 3 vary in meaningful ways with the fibers' spontaneous discharge rates. The elements of the model and some implications are discussed.
最近的研究表明,安静环境中声音的感知检测阈值与从听神经纤维第一个峰电位的刺激依赖时间得出的神经元阈值测量值之间存在密切对应关系。此外,刺激特性可能由中枢听觉系统中神经元第一个峰电位时间的差异进行编码。因此,第一个峰电位时间背后的生理机制备受关注,但尚未得到充分理解。在此,我们提出一个生理模型,该模型用最少数量的生理上合理的参数准确解释了观察到的听神经纤维第一个峰电位潜伏期对刺激的依赖性。5个参数中的2个可被视为常数(至少对于绝大多数纤维而言),而其他3个参数则随纤维的自发放电率以有意义的方式变化。文中讨论了该模型的要素及一些含义。