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前庭 II 型毛细胞突触的传出突触传递。

Efferent synaptic transmission at the vestibular type II hair cell synapse.

机构信息

Department of Neuroscience, The Johns Hopkins University School of Medicine, Baltimore, Maryland.

Department of Otolaryngology-Head and Neck Surgery, The Center for Hearing and Balance, and The Center for Sensory Biology, The Johns Hopkins University School of Medicine, Baltimore, Maryland.

出版信息

J Neurophysiol. 2020 Aug 1;124(2):360-374. doi: 10.1152/jn.00143.2020. Epub 2020 Jul 1.

Abstract

In the vestibular peripheral organs, type I and type II hair cells (HCs) transmit incoming signals via glutamatergic quantal transmission onto afferent nerve fibers. Additionally, type I HCs transmit via "non-quantal" transmission to calyx afferent fibers, by accumulation of glutamate and potassium in the synaptic cleft. Vestibular efferent inputs originating in the brainstem contact type II HCs and vestibular afferents. Here, synaptic inputs to type II HCs were characterized by using electrical and optogenetic stimulation of efferent fibers combined with in vitro whole cell patch-clamp recording from type II HCs in the rodent vestibular crista. Properties of efferent synaptic currents in type II HCs were similar to those found in cochlear HCs and mediated by activation of α9-containing nicotinic acetylcholine receptors (nAChRs) and small-conductance calcium-activated potassium (SK) channels. While efferents showed a low probability of release at low frequencies of stimulation, repetitive stimulation resulted in facilitation and increased probability of release. Notably, the membrane potential of type II HCs during optogenetic stimulation of efferents showed a strong hyperpolarization in response to single pulses and was further enhanced by repetitive stimulation. Such efferent-mediated inhibition of type II HCs can provide a mechanism to adjust the contribution of signals from type I and type II HCs to vestibular nerve fibers, with a shift of the response to be more like that of calyx-only afferents with faster non-quantal responses. Type II vestibular hair cells (HCs) receive inputs from efferent neurons in the brain stem. We used in vitro optogenetic and electrical stimulation of vestibular efferent fibers to study their synaptic inputs to type II HCs. Stimulation of efferents inhibited type II HCs, similar to efferent effects on cochlear HCs. We propose that efferent inputs adjust the contribution of signals from type I and II HCs to vestibular nerve fibers.

摘要

在前庭外周器官中,I 型和 II 型毛细胞(HCs)通过谷氨酸量子传递将传入信号传递到传入神经纤维。此外,I 型 HCs 通过谷氨酸和钾在突触间隙中的积累,通过“非量子”传递将信号传递到壶腹传入纤维。起源于脑干的前庭传出输入接触 II 型 HCs 和前庭传入纤维。在这里,通过使用电刺激和光遗传学刺激传出纤维,并结合在啮齿动物前庭嵴中的 II 型 HC 进行体外全细胞膜片钳记录,对 II 型 HC 的突触输入进行了表征。II 型 HC 中的传出突触电流的特性与耳蜗 HC 中的相似,并通过激活含有α9 的烟碱型乙酰胆碱受体(nAChRs)和小电导钙激活钾(SK)通道来介导。虽然传出神经在低频刺激时释放的概率较低,但重复刺激会导致易化和释放概率增加。值得注意的是,在对传出神经进行光遗传学刺激时,II 型 HC 的膜电位对单个脉冲表现出强烈的超极化反应,并通过重复刺激进一步增强。这种传出神经对 II 型 HC 的抑制作用可以提供一种机制来调节来自 I 型和 II 型 HC 的信号对前庭神经纤维的贡献,使反应更类似于只有壶腹的传入纤维的反应,具有更快的非量子反应。

前庭毛细胞(HCs)接收来自脑干传出神经元的输入。我们使用体外光遗传学和电刺激前庭传出纤维来研究它们对 II 型 HCs 的突触输入。传出神经刺激抑制 II 型 HCs,类似于传出神经对耳蜗 HCs 的影响。我们提出,传出输入调节来自 I 型和 II 型 HCs 的信号对前庭神经纤维的贡献。

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Efferent synaptic transmission at the vestibular type II hair cell synapse.前庭 II 型毛细胞突触的传出突触传递。
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