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Sodium Along With Low-Threshold Potassium Currents Enhance Coincidence Detection of Subthreshold Noisy Signals in MSO Neurons

机译:钠与低阈值钾电流一起增强MSO神经元中亚阈值噪声信号的重合检测

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摘要

Voltage-dependent membrane conductances support specific neurophysiological properties. To investigate the mechanisms of coincidence detection, we activated gerbil medial superior olivary (MSO) neurons with dynamic current-clamp stimuli in vitro. Spike-triggered reverse-correlation analysis for injected current was used to evaluate the integration of subthreshold noisy signals. Consistent with previous reports, the partial blockade of low-threshold potassium channels (IKLT) reduced coincidence detection by slowing the rise of current needed on average to evoke a spike. However, two factors point toward the involvement of a second mechanism. First, the reverse correlation currents revealed that spike generation was associated with a preceding hyperpolarization. Second, rebound action potentials are 45% larger compared to depolarization-evoked spikes in the presence of an IKLT antagonist. These observations suggest that the sodium current (INa) was substantially inactivated at rest. To test this idea, INa was enhanced by increasing extracellular sodium concentration. This manipulation reduced coincidence detection, as reflected by slower spike-triggering current, and diminished the hyperpolarization phase in the reverse-correlation currents. As expected, a small outward bias current decreased the pre-spike hyperpolarization phase, and TTX blockade of INa nearly eliminated the hyperpolarization phase in the reverse correlation current. A computer model including Hodgkin-Huxley type conductances for spike generation and for IKLT showed reduction in coincidence detection when IKLT was reduced or when INa was increased. We hypothesize that desirable synaptic signals first remove some inactivation of INa and reduce activation of IKLT to create a brief temporal window for coincidence detection of subthreshold noisy signals.
机译:电压依赖性膜电导支持特定的神经生理特性。为了研究重合检测的机制,我们在体外用动态电流钳刺激激活了沙鼠内侧上橄榄(MSO)神经元。注入电流的尖峰触发反向相关分析用于评估亚阈值噪声信号的积分。与以前的报告一致,对低阈值钾离子通道(IKLT)的部分封锁通过减缓平均引起尖峰所需的电流的上升,降低了重合检测。但是,有两个因素指向第二种机制的参与。首先,反向相关电流揭示出尖峰的产生与先前的超极化有关。其次,与存在IKLT拮抗剂的去极化诱发尖峰相比,反弹动作电位要大45%。这些观察结果表明,钠电流(INa)在静止时基本失活。为了验证这一想法,通过增加细胞外钠浓度来增强INa。这种操作减少了重合检测,这反映在较慢的尖峰触发电流中,并减小了反向相关电流中的超极化阶段。如预期的那样,小的向外偏置电流会减小尖峰前的超极化阶段,并且对INa的TTX阻断几乎消除了反向相关电流中的超极化阶段。包括霍奇金-赫克斯利型电导的计算机模型,用于产生尖峰和IKLT,当IKLT减小或INa增大时,重合检测减小。我们假设理想的突触信号首先消除INa的一些失活,并减少IKLT的激活,以创建一个简短的时间窗,用于亚阈值噪声信号的同时检测。

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