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KCNQ 通道在小鼠听觉皮层外周损伤后细胞类型特异性可塑性中的作用。

A Role for KCNQ Channels on Cell Type-Specific Plasticity in Mouse Auditory Cortex after Peripheral Damage.

机构信息

Pittsburgh Hearing Research Center and Department of Otolaryngology, University of Pittsburgh, Pittsburgh, Pennsylvania 15261.

Center for Neuroscience, University of Pittsburgh, University of Pittsburgh, Pittsburgh, Pennsylvania 15261.

出版信息

J Neurosci. 2023 Mar 29;43(13):2277-2290. doi: 10.1523/JNEUROSCI.1070-22.2023. Epub 2023 Feb 22.

Abstract

Damage to sensory organs triggers compensatory plasticity mechanisms in sensory cortices. These plasticity mechanisms result in restored cortical responses, despite reduced peripheral input, and contribute to the remarkable recovery of perceptual detection thresholds to sensory stimuli. Overall, peripheral damage is associated with a reduction of cortical GABAergic inhibition; however, less is known about changes in intrinsic properties and the underlying biophysical mechanisms. To study these mechanisms, we used a model of noise-induced peripheral damage in male and female mice. We uncovered a rapid, cell type-specific reduction in the intrinsic excitability of parvalbumin-expressing neurons (PVs) in layer (L) 2/3 of auditory cortex. No changes in the intrinsic excitability of either L2/3 somatostatin-expressing or L2/3 principal neurons (PNs) were observed. The decrease in L2/3 PV excitability was observed 1, but not 7, d after noise exposure, and was evidenced by a hyperpolarization of the resting membrane potential, depolarization of the action potential threshold, and reduction in firing frequency in response to depolarizing current. To uncover the underlying biophysical mechanisms, we recorded potassium currents. We found an increase in KCNQ potassium channel activity in L2/3 PVs of auditory cortex 1 d after noise exposure, associated with a hyperpolarizing shift in the minimal voltage activation of KCNQ channels. This increase contributes to the decreased intrinsic excitability of PVs. Our results highlight cell-type- and channel-specific mechanisms of plasticity after noise-induced hearing loss and will aid in understanding the pathologic processes involved in hearing loss and hearing loss-related disorders, such as tinnitus and hyperacusis. Noise-induced damage to the peripheral auditory system triggers central plasticity that compensates for the reduced peripheral input. The mechanisms of this plasticity are not fully understood. In the auditory cortex, this plasticity likely contributes to the recovery of sound-evoked responses and perceptual hearing thresholds. Importantly, other functional aspects of hearing do not recover, and peripheral damage may also lead to maladaptive plasticity-related disorders, such as tinnitus and hyperacusis. Here, after noise-induced peripheral damage, we highlight a rapid, transient, and cell type-specific reduction in the excitability of layer 2/3 parvalbumin-expressing neurons, which is due, at least in part, to increased KCNQ potassium channel activity. These studies may highlight novel strategies for enhancing perceptual recovery after hearing loss and mitigating hyperacusis and tinnitus.

摘要

感觉器官的损伤会触发感觉皮层中的代偿性可塑性机制。这些可塑性机制导致皮质反应的恢复,尽管外周输入减少,并有助于感觉刺激的感知检测阈值的显著恢复。总的来说,外周损伤与皮质 GABA 能抑制的减少有关;然而,关于内在特性和潜在的生物物理机制的变化知之甚少。为了研究这些机制,我们使用了一种雄性和雌性小鼠的噪声诱导外周损伤模型。我们发现,听觉皮层 2/3 层中表达 parvalbumin 的神经元(PVs)的内在兴奋性迅速且具有细胞类型特异性降低。在 L2/3 中的 somatostatin 表达或 L2/3 主要神经元(PNs)的内在兴奋性没有观察到变化。在噪声暴露后 1 天而不是 7 天观察到 L2/3 PV 兴奋性降低,这表现为静息膜电位超极化、动作电位阈值去极化以及对去极化电流的反应频率降低。为了揭示潜在的生物物理机制,我们记录了钾电流。我们发现,噪声暴露后 1 天,听觉皮层 L2/3 PV 中的 KCNQ 钾通道活性增加,与 KCNQ 通道的最小电压激活的超极化偏移相关。这种增加有助于 PVs 的内在兴奋性降低。我们的研究结果强调了噪声诱导听力损失后具有细胞类型和通道特异性的可塑性机制,并将有助于理解听力损失和听力损失相关疾病(如耳鸣和听觉过敏)中涉及的病理过程。外周听觉系统的噪声损伤会引发中枢可塑性,以补偿外周输入的减少。这种可塑性的机制尚不完全清楚。在听觉皮层中,这种可塑性可能有助于声音诱发反应和感知听力阈值的恢复。重要的是,其他听力功能方面没有恢复,外周损伤也可能导致适应性不良的可塑性相关疾病,如耳鸣和听觉过敏。在这里,在噪声诱导的外周损伤后,我们强调了 2/3 层表达 parvalbumin 的神经元兴奋性的快速、短暂和细胞类型特异性降低,这至少部分是由于 KCNQ 钾通道活性增加所致。这些研究可能突出了听力损失后增强感知恢复和减轻听觉过敏和耳鸣的新策略。

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