Mechanisms of rhythm generation in a spinal locomotor network deprived of crossed connections: The lamprey hemicord

被引:92
作者
Cangiano, L [1 ]
Grillner, S [1 ]
机构
[1] Karolinska Inst, Dept Neurosci, Nobel Inst Neurophysiol, SE-17177 Stockholm, Sweden
关键词
locomotion; central pattern generator; spinal; lamprey; rhythm; synchrony;
D O I
10.1523/JNEUROSCI.2301-04.2005
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The spinal network coordinating locomotion in the lamprey serves as a model system, in which it has been possible to elucidate connectivity and cellular mechanisms using the isolated spinal cord. Locomotor burst activity alternates between the left and right side of a segment through reciprocal inhibition. We have recently shown that the burst generation itself in a hemisegment does not require inhibitory mechanisms. The focus of this study is the intrinsic operation of this hemisegmental burst- generating component of the locomotor network. Brief electrical stimulation ( 0.3 s) of the hemicord evokes long- lasting bouts ( > 2 min) of bursts ( 2 - 15 Hz) in the mid to high- frequency range of locomotion. Bout release is an all- or- none phenomenon requiring a threshold intensity of stimulation and glutamatergic transmission within a population of excitatory interneurons, with axons extending over several segments. The progressive activity-dependent decrease in burst frequency that takes place during a bout is followed by a slow recovery process lasting > 20 min. Intracellular recordings of single motoneurons, excitatory interneurons, and inhibitory interneurons show that locomotor bouts, in general, are accompanied by a marked depolarization. Membrane potential oscillations and spikes occur in phase with the ventral root ( VR) bursts. Active motoneurons and interneurons fire one spike per VR burst, as also confirmed by axonal recordings. Thus, the reciprocal inhibition between opposite hemisegments in the intact cord not only ensures left - right alternation and lowers the locomotor frequency but also promotes a shift from single to multiple action potentials per cycle in network neurons.
引用
收藏
页码:923 / 935
页数:13
相关论文
共 60 条
[1]   Xenopus embryonic spinal neurons recorded in situ with patch-clamp electrodes -: conditional oscillators after all? [J].
Aiken, SP ;
Kuenzi, FM ;
Dale, N .
EUROPEAN JOURNAL OF NEUROSCIENCE, 2003, 18 (02) :333-343
[2]   CNQX AND DNQX BLOCK NON-NMDA SYNAPTIC TRANSMISSION BUT NOT NMDA-EVOKED LOCOMOTION IN LAMPREY SPINAL-CORD [J].
ALFORD, S ;
GRILLNER, S .
BRAIN RESEARCH, 1990, 506 (02) :297-302
[3]   Pharmacological block of the electrogenic sodium pump disrupts rhythmic bursting induced by strychnine and bicuculline in the neonatal rat spinal cord [J].
Ballerini, L ;
Bracci, E ;
Nistri, A .
JOURNAL OF NEUROPHYSIOLOGY, 1997, 77 (01) :17-23
[4]  
BIRO Z, 2003, SOC NEUR ABSTR, V29
[5]   USE OF SUCROSE GAP FOR RECORDING POSTSYNAPTIC POPULATION POTENTIALS-EVOKED BY SINGLE INTERNEURONES IN SPINAL MOTO-NEURONS [J].
BRINK, E ;
JANKOWSKA, E ;
MCCREA, D ;
SKOOG, B .
BRAIN RESEARCH, 1981, 223 (01) :165-169
[6]   TONIC INHIBITION OF A NEW TYPE OF SPINAL INTERNEURON DURING FICTIVE LOCOMOTION IN THE LAMPREY [J].
BRODIN, L ;
GRILLNER, S .
ACTA PHYSIOLOGICA SCANDINAVICA, 1986, 128 (02) :327-329
[7]   EFFECTS OF MAGNESIUM ON FICTIVE LOCOMOTION INDUCED BY ACTIVATION OF N-METHYL-D-ASPARTATE (NMDA) RECEPTORS IN THE LAMPREY SPINAL-CORD INVITRO [J].
BRODIN, L ;
GRILLNER, S .
BRAIN RESEARCH, 1986, 380 (02) :244-252
[8]   Adenosine A1 receptors modulate high voltage-activated Ca2+ currents and motor pattern generation in the Xenopus embryo [J].
Brown, P ;
Dale, N .
JOURNAL OF PHYSIOLOGY-LONDON, 2000, 525 (03) :655-667
[9]   ELECTROPHYSIOLOGICAL PROPERTIES OF IDENTIFIED CLASSES OF LAMPREY SPINAL NEURONS [J].
BUCHANAN, JT .
JOURNAL OF NEUROPHYSIOLOGY, 1993, 70 (06) :2313-2325
[10]   Segmental distribution of common synaptic inputs to spinal motoneurons during fictive swimming in the lamprey [J].
Buchanan, JT ;
Kasicki, S .
JOURNAL OF NEUROPHYSIOLOGY, 1999, 82 (03) :1156-1163