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前庭抑制传入对上位斜肌运动神经元的药理学特性。

Pharmacological profile of vestibular inhibitory inputs to superior oblique motoneurons.

机构信息

Department Biology II, Ludwig-Maximilians-University Munich, Großhaderner Str. 2, 82152, Planegg, Germany.

Graduate School of Systemic Neurosciences, Ludwig-Maximilians-University Munich, Großhaderner Str. 2, 82152, Planegg, Germany.

出版信息

J Neurol. 2018 Oct;265(Suppl 1):18-25. doi: 10.1007/s00415-018-8829-4. Epub 2018 Mar 19.

Abstract

Vestibulo-ocular reflexes (VOR) are mediated by three-neuronal brainstem pathways that transform semicircular canal and otolith sensory signals into motor commands for the contraction of spatially specific sets of eye muscles. The vestibular excitation and inhibition of extraocular motoneurons underlying this reflex is reciprocally organized and allows coordinated activation of particular eye muscles and concurrent relaxation of their antagonistic counterparts. Here, we demonstrate in isolated preparations of Xenopus laevis tadpoles that the discharge modulation of superior oblique motoneurons during cyclic head motion derives from an alternating excitation and inhibition. The latter component is mediated exclusively by GABA, at variance with the glycinergic inhibitory component in lateral rectus motoneurons. The different pharmacological profile of the inhibition correlates with rhombomere-specific origins of vestibulo-ocular projection neurons and the complementary segmental abundance of GABAergic and glycinergic vestibular neurons. The evolutionary conserved rhombomeric topography of vestibulo-ocular projections makes it likely that a similar pharmacological organization of inhibitory VOR neurons as reported here for anurans is also implemented in mammalian species including humans.

摘要

前庭眼反射(VOR)是由三神经元脑干通路介导的,它将半规管和耳石感觉信号转化为运动指令,用于收缩空间特异性的眼肌集合。这种反射所涉及的眼外运动神经元的前庭兴奋和抑制是相互组织的,允许特定眼肌的协调激活和它们的拮抗肌的同时放松。在这里,我们在分离的非洲爪蟾蝌蚪幼虫标本中证明,在周期性头部运动期间,上斜肌运动神经元的放电调制来自于交替的兴奋和抑制。后者仅由 GABA 介导,与水平直肌运动神经元中的甘氨酸抑制成分不同。抑制的不同药理学特征与前庭眼投射神经元的神经节特异性起源以及 GABA 能和甘氨酸能前庭神经元的互补节段丰度相关。前庭眼投射的进化保守的神经节拓扑结构使得类似于两栖动物的报道的抑制性 VOR 神经元的类似药理学组织在包括人类在内的哺乳动物物种中也得到实现的可能性很大。

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