John Eccles' studies of spinal cord presynaptic inhibition

被引:55
作者
Willis, William D. [1 ]
机构
[1] Univ Texas, Med Branch, Dept Neurosci & Cell Biol, Galveston, TX 77555 USA
关键词
JC Eccles; neuroscience history; presynaptic inhibition; pain; spinal cord;
D O I
10.1016/j.pneurobio.2006.02.007
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Presynaptic inhibition is one of many areas of neurophysiology in which Sir John Eccles did pioneering work. Frank and Fuortes first described presynaptic inhibition in 1957. Subsequently, Eccles and his colleagues characterized the process more fully and showed its relationship to primary afferent depolarization. Eccles' studies emphasized presynaptic inhibition of the group la monosynaptic reflex pathway but also included group 1b, 11 and cutaneous afferent pathways, and the dorsal column nuclei. Presynaptic inhibition of the group la afferent pathway was demonstrated by depression of monosynaptic excitatory postsynaptic potentials and inhibition of monosynaptic reflex discharges. Primary afferent depolarization was investigated by recordings of dorsal root potentials, dorsal root reflexes, cord dorsum and spinal cord field potentials, and tests of the excitability of primary afferent terminals. Primary afferent depolarization was proposed to result in presynaptic inhibition by reducing the amplitude of the action potential as it invades presynaptic terminals. This resulted in less calcium influx and, therefore, less transmitter release. Presynaptic inhibition and primary afferent depolarization could be blocked by antagonists of GABA(A) receptors, implying a role of interneurons that release gamma aminobutyric acid in the inhibitory circuit. The reason why afferent terminals were depolarized was later explained by a high intracellular concentration of Cl- ions in primary sensory neurons. Activation of GABAA receptors opens Cl- channels, and Cl- efflux results in depolarization. Another proposed mechanism of depolarization was an increase in extracellular concentration of K+ following neural activity. Eccles' work on presynaptic inhibition has since been extended in a variety of ways. (c) 2006 Elsevier Ltd. All rights reserved.
引用
收藏
页码:189 / 214
页数:26
相关论文
共 204 条
  • [51] Curtis D.R., Eccles J.C., Synaptic action during and after repetitive stimulation, J. Physiol. (Lond.), 150, pp. 374-398, (1960)
  • [52] Curtis D.R., Lacey G., Prolonged GABA<sub>B</sub> receptor-mediated synaptic inhibition in the cat spinal cord: an in vivo study, Exp. Brain Res., 121, pp. 319-333, (1998)
  • [53] Curtis D.R., Lodge D., The depolarization of feline ventral horn group Ia spinal afferent terminations by GABA, Exp. Brain Res., 46, pp. 215-233, (1982)
  • [54] Curtis D.R., Ryall R.W., Pharmacological studies upon spinal presynaptic fibres, Exp. Brain Res., 1, pp. 195-204, (1966)
  • [55] Curtis D.R., Lodge D., Brand S.J., GABA and spinal afferent terminal excitability in the cat, Brain Res., 130, pp. 360-363, (1977)
  • [56] Curtis D.R., Lodge D., Bornstein J.C., Peet M.J., Leah J.D., The dual effects of GABA and related amino acids on the electrical threshold of ventral horn group Ia afferent terminations in the cat, Exp. Brain Res., 48, pp. 387-400, (1982)
  • [57] Curtis D.R., Gynther B.D., Beattie D.T., Lacey G., An in vivo electrophysiological investigation of group Ia afferent fibres and ventral horn terminations in the cat spinal cord, Exp. Brain Res., 106, pp. 403-417, (1995)
  • [58] Dawson G.D., Merrill E.G., Wall P.D., Dorsal root potentials produced by stimulation of fine afferents, Science, 167, pp. 1385-1387, (1970)
  • [59] Del Castillo J., Katz B., Changes in end-plate activity produced by presynaptic polarization, J. Physiol. (Lond.), 124, pp. 586-604, (1954)
  • [60] Desarmenien M., Santangelo F., Loeffler J.P., Felt P., Comparative study of GABA-mediated depolarizations of lumbar Aδ and C primary afferent neurones of the rat, Exp. Brain Res., 54, pp. 521-528, (1984)