The Department of Physiology and the Center for Biomedical Neuroscience, University of Texas Health Science Center, San Antonio, Texas; and.
J Neurophysiol. 2013 Oct;110(7):1621-30. doi: 10.1152/jn.00117.2013. Epub 2013 Jul 10.
Auditory brain stem circuits rely on fast, precise, and reliable neurotransmission to process auditory information. To determine the fundamental role of myelination in auditory brain stem function, we examined the evoked auditory brain stem response (ABR) from the Long Evans shaker (LES) rat, which lacks myelin due to a genetic deletion of myelin basic protein. In control rats, the ABR evoked by a click consisted of five well-defined waves (denoted waves I-V). In LES rats, waves I, IV, and V were present, but waves II and III were undetectable, indicating disrupted function in the earliest stages of central nervous system auditory processing. In addition, the developmental shortening of the interval between waves I and IV that normally occurs in control rats was arrested and resulted in a significant increase in the central conduction time in LES rats. In brain stem slices, action potential transmission between the calyx of Held terminals and the medial nucleus of the trapezoid body (MNTB) neurons was delayed and less reliable in LES rats, although the resting potential, threshold, input resistance, and length of the axon initial segment of the postsynaptic MNTB neurons were normal. The amplitude of glutamatergic excitatory postsynaptic currents (EPSCs) and the degree of synaptic depression during high-frequency stimulation were not different between LES rats and controls, but LES rats exhibited a marked slow component to the EPSC decay and a much higher rate of presynaptic failures. Together, these results indicate that loss of myelin disrupts brain stem auditory processing, increasing central conduction time and reducing the reliability of neurotransmission.
听觉脑干回路依赖于快速、精确和可靠的神经递质传递来处理听觉信息。为了确定髓鞘在听觉脑干功能中的基本作用,我们检查了长激沙克(LES)大鼠的诱发听觉脑干反应(ABR),由于髓鞘碱性蛋白的基因缺失,这种大鼠缺乏髓鞘。在对照大鼠中,由 click 诱发的 ABR 由五个定义明确的波组成(表示为波 I-V)。在 LES 大鼠中,存在波 I、IV 和 V,但波 II 和 III 不可检测,表明中枢神经系统听觉处理的最早阶段功能受损。此外,在对照大鼠中正常发生的波 I 和 IV 之间间隔的发育性缩短被阻止,导致 LES 大鼠的中枢传导时间显著增加。在脑干切片中,在 HELD 末梢和梯形体 MED 核(MNTB)神经元之间的动作电位传递在 LES 大鼠中延迟且不太可靠,尽管突触后 MNTB 神经元的静息电位、阈值、输入电阻和轴突起始段长度正常。谷氨酸能兴奋性突触后电流(EPSC)的幅度和高频刺激期间突触抑制的程度在 LES 大鼠和对照之间没有差异,但 LES 大鼠表现出 EPSC 衰减的明显慢成分和更高的突触前失败率。总之,这些结果表明髓鞘的丧失破坏了脑干听觉处理,增加了中枢传导时间并降低了神经递质传递的可靠性。