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脑桥和延髓网状结构对猫γ运动神经元放电同步性的影响。

Influence of the pontine and medullary reticular formation on synchrony of gamma motoneurone discharge in the cat.

作者信息

Baker J R, Catley M C, Davey N J, Ellaway P H

机构信息

Department of Physiology, Charing Cross and Westminster Medical School, London, UK.

出版信息

Exp Brain Res. 1991;87(3):604-14. doi: 10.1007/BF00227085.

Abstract

Discharges of gamma motoneurones were recorded from cut filaments of the nerve to the gastrocnemius medialis muscle in the cat decerebrated at an intercollicular level. Gamma motoneurones exhibited a background discharge in the absence of intentional stimulation, or could be made to discharge by continuous, innocuous stimulation of the skin of the heel. The discharges were periodic and regular (low coefficient of variation of interspike intervals), and no correlation was observed between the discharges of pairs of individual gamma efferents. Electrolytic lesion of the ipsilateral pontine and medullary reticular formation in the nucleus subcoeruleus, the nucleus reticularis gigantocellularis or the nucleus reticularis magnocellularis, invariably decreased regularity of discharge and resulted in short term synchrony. Lesions of the peri-aqueductal grey, the nucleus raphe dorsalis or the midline raphe nuclei did not induce synchrony. Surgical lesions in the locus coeruleus caused irregular firing and synchrony only when the lesion extended into the adjacent nucleus subcoeruleus. We conclude that monoaminergic neurones of the nucleus subcoeruleus, or a closely associated tegmental field, with axons descending through the gigantocellularis and magnocellularis fields, are the most likely origin of the bulbospinal control of synchronizing influences on gamma motoneurone discharge.

摘要

在中脑间水平去大脑的猫身上,从腓肠肌内侧神经的切断丝记录γ运动神经元的放电。γ运动神经元在没有有意刺激时呈现背景放电,或者可通过持续、无害地刺激足跟皮肤使其放电。放电是周期性且规则的(峰间间隔变异系数低),并且在成对的单个γ传出纤维的放电之间未观察到相关性。同侧脑桥和延髓网状结构在蓝斑下核、巨细胞网状核或大细胞网状核的电解损伤,总是会降低放电的规律性并导致短期同步化。导水管周围灰质、中缝背核或中缝中线核的损伤不会诱发同步化。蓝斑的手术损伤仅在损伤扩展到相邻的蓝斑下核时才会引起不规则放电和同步化。我们得出结论,蓝斑下核的单胺能神经元,或与之紧密相关的被盖区,其轴突通过巨细胞和大细胞区下行,最有可能是对γ运动神经元放电同步化影响的延髓脊髓控制的起源。

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