首页> 美国卫生研究院文献>The Journal of Neuroscience >Kcna1 Gene Deletion Lowers the Behavioral Sensitivity of Mice to Small Changes in Sound Location and Increases Asynchronous Brainstem Auditory Evoked Potentials But Does Not Affect Hearing Thresholds
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Kcna1 Gene Deletion Lowers the Behavioral Sensitivity of Mice to Small Changes in Sound Location and Increases Asynchronous Brainstem Auditory Evoked Potentials But Does Not Affect Hearing Thresholds

机译:Kcna1基因删除降低声音大小的微小变化对小鼠的行为敏感性并增加异步脑干听觉诱发电位但不影响听力阈值。

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摘要

Sound localization along the azimuth depends on the sensitivity of binaural nuclei in the auditory brainstem to small differences in interaural level and timing occurring within a submillisecond epoch and on monaural pathways that transmit level and timing cues with high temporal fidelity to insure their coincident arrival at the binaural targets. The soma and axons of these brainstem neurons are heavily invested with ion channels containing the low-threshold potassium channel subunit Kv1.1, which previous in vitro and in vivo studies suggest are important for regulating their high input–output correspondence and temporal synchrony. We compared awake Kcna1-null mutant (Kcna1−/−) mice lacking Kv1.1 with Kcna1+/+ mice to determine whether Kv1.1 activity contributes to sound localization and examined anesthetized mice for absolute hearing thresholds for suprathreshold differences that may be revealed in the waveforms of auditory brainstem response potentials. The awake −/− mice tested with reflex modification audiometry had reduced sensitivity to an abrupt change in the location of a broad band noise compared to +/+ mice, while anesthetized −/− mice had normal absolute thresholds for tone pips but a high level of stimulus-evoked but asynchronous background activity. Evoked potential waveforms had progressively earlier peaks and troughs in −/− mice, but the amplitude excursions between adjacent features were identical in the two groups. Their greater excitability and asynchrony in suprathreshold evoked potentials coupled with their normal thresholds suggests that a disruption in central neural processing in −/− mice and not peripheral hearing loss is responsible for their poor sound localization.
机译:沿方位角的声音定位取决于听觉脑干中双耳核对亚毫秒级内发生的听觉水平和时间的细微差别的敏感性,以及以高时间保真度传送水平和时间提示的单耳途径,以确保它们同时到达耳道。双耳目标。这些脑干神经元的躯体和轴突大量投入了含有低阈值钾通道亚基Kv1.1的离子通道,先前的体外和体内研究表明,这些通道对于调节其高输入输出对应度和时间同步性很重要。我们将缺少Kv1.1的清醒Kcna1-null突变(Kcna1-/-)小鼠与Kcna1 + / +小鼠进行了比较,以确定Kv1.1活性是否有助于声音定位,并检查了麻醉小鼠的超阈值绝对听觉阈值,该阈值可能会在听性脑干反应电位的波形与+ / +小鼠相比,使用反射修正测听法测试的清醒+/-小鼠对宽带噪声位置突然变化的敏感性降低,而麻醉的+/-小鼠具有正常的音调绝对阈值,但水平较高刺激诱发但异步的背景活动。在-/-小鼠中,诱发的电位波形具有逐渐升高的波峰和波谷,但两组相邻特征之间的振幅偏移相同。它们具有更高的兴奋性和超阈值诱发电位的异步性,以及它们的正常阈值,表明-/-小鼠中枢神经加工受到干扰,而非周围性听力丧失是其不良声音定位的原因。

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