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与猴子速度存储相关的前庭连合神经元的超微结构

Ultrastructure of vestibular commissural neurons related to velocity storage in the monkey.

作者信息

Holstein G R, Martinelli G P, Wearne S, Cohen B

机构信息

Department of Neurology, Mount Sinai School of Medicine, New York, NY 10029, USA.

出版信息

Neuroscience. 1999;93(1):155-70. doi: 10.1016/s0306-4522(99)00142-6.

Abstract

The angular vestibulo-ocular reflex maintains gaze during head movements. It is thought to be mediated by two components: direct and velocity storage pathways. The direct angular vestibulo-ocular reflex is conveyed by a three neuron chain from the labyrinth to the ocular motoneurons. The indirect pathway involves a more complex neural network that utilizes a portion of the vestibular commissure. The purpose of the present study was to identify the ultrastructural characteristics of commissural neurons in the medial vestibular nucleus that are related to the velocity storage component of the angular vestibulo-ocular reflex. Ultrastructural studies of degenerating medial vestibular nucleus neurons were conducted in monkeys following midline section of rostral medullary commissural fibers with subsequent behavioral testing. After this lesion, oculomotor and vestibular functions attributable to velocity storage were abolished, whereas the direct angular vestibulo-ocular reflex pathway remained intact. Since this damage was functionally discrete, degenerating neurons were interpreted as potential participants in the velocity storage network. Ultrastructural observations indicate that commissural neurons related to velocity storage are small and medium sized cells having large nuclei with deep indentations and relatively little cytoplasm, which are located in the lateral crescents of rostral medial vestibular nucleus. The morphology of degenerating dendritic profiles varied. Some contained numerous round or tubular mitochondria in a pale cytoplasmic matrix with few other organelles, while others had few mitochondria but many cisterns and vacuoles in dense granular cytoplasm. The commissural nature of these cells was further suggested by the presence of two different types of degenerating axon terminals in the rostral medial vestibular nucleus: those with a moderate density of large spherical synaptic vesicles, and those with pleomorphic, primarily ellipsoid synaptic vesicles. The recognition of two types of degenerating terminals further supports our interpretation that at least two morphological types of commissural neurons participate in the velocity storage network. The degenerating boutons formed contacts with a variety of postsynaptic partners. In particular, synapses were observed between degenerating boutons and non-degenerating dendrites, and between intact terminals and degenerating dendrites. However, degenerating pre- and postsynaptic elements were rarely observed in direct contact, suggesting that additional neurons are interposed in the indirect pathway commissural system. On the basis of these ultrastructural observations, it is concluded that vestibular commissural neurons involved in the mediation of velocity storage have distinguishing ultrastructural features and synaptology, that are different from those of direct pathway neurons.

摘要

角向前庭眼反射在头部运动时维持注视。它被认为由两个部分介导:直接通路和速度存储通路。直接角向前庭眼反射由从迷路到眼球运动神经元的三神经元链传导。间接通路涉及一个更复杂的神经网络,该网络利用了部分前庭连合。本研究的目的是确定内侧前庭核中与角向前庭眼反射速度存储成分相关的连合神经元的超微结构特征。在猴子中,在延髓嘴侧连合纤维进行中线横断并随后进行行为测试后,对退化的内侧前庭核神经元进行了超微结构研究。在此损伤后,归因于速度存储的动眼和前庭功能被消除,而直接角向前庭眼反射通路保持完整。由于这种损伤在功能上是离散的,退化的神经元被解释为速度存储网络的潜在参与者。超微结构观察表明,与速度存储相关的连合神经元是中小型细胞,具有大核且有深凹陷,细胞质相对较少,位于嘴侧内侧前庭核的外侧新月形区域。退化树突轮廓的形态各不相同。一些在淡染的细胞质基质中含有许多圆形或管状线粒体,其他细胞器很少,而另一些线粒体很少,但在致密颗粒状细胞质中有许多池和空泡。在嘴侧内侧前庭核中存在两种不同类型的退化轴突终末,进一步表明了这些细胞的连合性质:一种具有中等密度的大球形突触小泡,另一种具有多形性,主要是椭圆形突触小泡。对两种类型退化终末的识别进一步支持了我们的解释,即至少两种形态类型的连合神经元参与速度存储网络。退化的终扣与多种突触后伙伴形成接触。特别是,在退化终扣与非退化树突之间以及完整终末与退化树突之间观察到了突触。然而,很少观察到退化的突触前和突触后成分直接接触,这表明在间接通路连合系统中有额外的神经元插入。基于这些超微结构观察,得出结论:参与速度存储介导的前庭连合神经元具有独特的超微结构特征和突触学,与直接通路神经元不同。

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