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本文引用的文献

1
Flexion-reflex of the limb, crossed extension-reflex, and reflex stepping and standing.肢体的屈曲反射、交叉伸展反射以及反射性踏步和站立。
J Physiol. 1910 Apr 26;40(1-2):28-121. doi: 10.1113/jphysiol.1910.sp001362.
2
Analysis of afferent and efferent systems in the muscle nerve of the toad and cat.蟾蜍和猫肌肉神经中传入与传出系统的分析。
J Physiol. 1952 Jun;117(2):152-71. doi: 10.1113/jphysiol.1952.sp004737.
3
Excitatory and inhibitory skin areas for flexor and extensor motoneurons.屈肌和伸肌运动神经元的兴奋性和抑制性皮肤区域。
Acta Physiol Scand Suppl. 1952;26(94):1-58.
4
The reflex activity of mammalian small-nerve fibres.哺乳动物小神经纤维的反射活动。
J Physiol. 1951 Dec 28;115(4):456-69. doi: 10.1113/jphysiol.1951.sp004681.
5
An analysis of fibre diameter and receptor characteristics of myelinated cutaneous afferent fibres in cat.猫有髓皮肤传入纤维的纤维直径和受体特性分析。
J Physiol. 1960 Aug;153(1):99-112. doi: 10.1113/jphysiol.1960.sp006521.
6
FUSIMOTOR ACTIVITY IN THE SPINAL CAT.脊髓猫的梭内肌运动活动
Acta Physiol Scand. 1965 Mar;63:197-212. doi: 10.1111/j.1748-1716.1965.tb04060.x.
7
Reflex regulation of primary (annulospiral) stretch receptors via gamma motoneurons in the cat.
J Neurophysiol. 1963 May;26:539-50. doi: 10.1152/jn.1963.26.3.539.
8
Reflex behaviour of fusimotor neurones of the cat upon electrical stimulation of various afferent fibers.猫的肌梭运动神经元在电刺激各种传入纤维时的反射行为。
Acta Physiol Pharmacol Neerl. 1962;10:391-407.
9
Spinal reflex regulation of fusimotor neurones.脊髓对肌梭运动神经元的反射调节。
J Physiol. 1958 Sep 23;143(2):195-212. doi: 10.1113/jphysiol.1958.sp006053.
10
Activity in the dorsal spinal grey matter after stimulation of cutaneous nerves.皮肤神经刺激后脊髓背侧灰质的活动
J Physiol. 1957 Jun 18;137(1):126-40. doi: 10.1113/jphysiol.1957.sp005801.

电刺激猫后肢皮肤传入纤维对γ运动神经元的作用。

Actions on gamma-motoneurones elicited by electrical stimulation of cutaneous afferent fibres in the hind limb of the cat.

作者信息

Johansson H, Sojka P

出版信息

J Physiol. 1985 Sep;366:343-63. doi: 10.1113/jphysiol.1985.sp015802.

DOI:10.1113/jphysiol.1985.sp015802
PMID:4057094
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1193037/
Abstract

The reflex actions elicited by graded electrical stimulation of hind-limb cutaneous (sural, superficial peroneal and tibial) nerves were investigated with intra- and extracellular micro-electrode recordings in gamma-motoneurones projecting to hind-limb muscles in twenty-four cats anaesthetized with alpha-chloralose. In total, reflex responses of 100 gamma-motoneurones were analysed. 82 of the gamma-cells were classified as dynamic (43) or static (39) using the method of mesencephalic stimulation (Appelberg, Hulliger, Johansson & Sojka, 1982). The general responsiveness (i.e. number of input nerves with effect/number of input nerves tested) of the whole sample of gamma-cells to stimulation of skin nerves was extremely high (94.8%). All negative observations were encountered among static and non-classified gamma-cells. Generally, the stimulation strengths needed for evoking effects in the gamma-cells were very low. A majority of the excitatory effects in the dynamic cells appeared with stimulation intensities below 1.5 threshold (T), while most static cells were excited with stimulation strengths between 1.5 and 2 T. Also a statistical comparison of the populations of stimulation strength thresholds for the excitatory effects revealed a significant difference (P less than 0.0009) between dynamic and static gamma-cells. By contrast, the thresholds for inhibitory effects in dynamic cells were slightly higher than for excitatory effects (P less than 0.0009). As regards excitation of static cells, inhibition of dynamic cells and inhibition of static cells, no statistically significant threshold differences were found. A strong dominance of excitation over inhibition was found in both dynamic and static flexor (posterior biceps and semitendinosus) gamma-motoneurones from all input nerves. In comparison to flexor gamma-motoneurones, there was a much higher incidence of inhibitory and mixed (excitatory and inhibitory) responses in extensor (triceps) gamma-motoneurones, from all nerves tested. For dynamic cells there was an about even balance between excitation and inhibition, while for static cells inhibition seemed to prevail. The latencies for excitatory effects in dynamic gamma-cells differed from those in static gamma-cells (P less than 0.027). The shortest latencies of excitatory effects found for dynamic gamma-cells indicate a disynaptic coupling, while for static cells the shortest route seemed to involve at least three synapses.(ABSTRACT TRUNCATED AT 400 WORDS)

摘要

在24只用α-氯醛糖麻醉的猫中,通过在投射到后肢肌肉的γ运动神经元内和细胞外微电极记录,研究了分级电刺激后肢皮肤(腓肠、腓浅和胫)神经所引发的反射动作。总共分析了100个γ运动神经元的反射反应。使用中脑刺激方法(Appelberg、Hulliger、Johansson和Sojka,1982年),将82个γ细胞分类为动态(43个)或静态(39个)。γ细胞全样本对皮肤神经刺激的总体反应性(即有效应的输入神经数量/测试的输入神经数量)极高(94.8%)。所有阴性观察结果均出现在静态和未分类的γ细胞中。一般来说,在γ细胞中引发效应所需的刺激强度非常低。动态细胞中的大多数兴奋效应在刺激强度低于1.5阈值(T)时出现,而大多数静态细胞在刺激强度介于1.5和2 T之间时被兴奋。对兴奋效应的刺激强度阈值群体进行的统计比较也显示,动态和静态γ细胞之间存在显著差异(P小于0.0009)。相比之下,动态细胞中抑制效应的阈值略高于兴奋效应的阈值(P小于0.0009)。在静态细胞的兴奋、动态细胞的抑制和静态细胞的抑制方面,未发现统计学上的显著阈值差异。在所有输入神经的动态和静态屈肌(肱二头肌后束和半腱肌)γ运动神经元中,兴奋对抑制都有很强的主导作用。与屈肌γ运动神经元相比,在所有测试神经的伸肌(肱三头肌)γ运动神经元中,抑制性和混合性(兴奋性和抑制性)反应的发生率要高得多。对于动态细胞,兴奋和抑制之间大致平衡,而对于静态细胞,抑制似乎占主导。动态γ细胞中兴奋效应的潜伏期与静态γ细胞中的不同(P小于0.027)。动态γ细胞中发现的兴奋效应最短潜伏期表明为双突触耦合,而对于静态细胞,最短路径似乎至少涉及三个突触。(摘要截短至400字)