Acetylcholine systems and rhythmic activities during the waking-sleep cycle

被引:153
作者
Steriade, M [1 ]
机构
[1] Univ Laval, Fac Med, Neurophysiol Lab, Quebec City, PQ G1K 7P4, Canada
来源
ACETYLCHOLINE IN THE CEREBRAL CORTEX | 2004年 / 145卷
关键词
mesopontine cholinergic nuclei; nucleus basalis; thalamocortical neurons; cortical neurons; intracellular recordings; input resistance; waking; sleep states; in vivo experiments;
D O I
10.1016/S0079-6123(03)45013-9
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The two processes of activation in thalamocortical systems exerted by mesopontine cholinergic neurons are (a) a direct depolarization associated with increased input resistance of thalamic relay neurons, which is antagonized by muscarinic blockers, and (b) a disinhibition of the same neurons via hyperpolarization of inhibitory thalamic reticular neurons. Low-frequency (<15 Hz) oscillations during slow-wave sleep, characterized by rhythmic and prolonged hyperpolarizations, are suppressed by brainstem cholinergic neurons and nucleus basalis cholinergic and GABAergic neurons projecting to thalamic reticular neurons. Fast rhythms (20-60 Hz) appear during the sustained depolarization of thalamic and neocortical neurons during brain-active states that are accompanied by increased release of acetylcholine (ACh) in the thalamus and cerebral cortex. Such fast rhythms also occur during the depolarizing phases of the slow oscillation (0.5-1 Hz) in non-REM sleep. Intracellular recordings of neocortical neurons during natural states of waking and sleep demonstrate stable and increased input resistance of corticocortical and corticothalamic neurons during the sustained depolarization in wakefulness, compared to the depolarizing phase of the slow oscillation in non-REM sleep. Despite the highly increased synaptic inputs along different afferent systems that open many conductances of cortical neurons during wakefulness, the increased input resistance is attributed to the effect of acetylcholine on cortical neurons.
引用
收藏
页码:179 / 196
页数:18
相关论文
共 65 条
[31]   Impact of spontaneous synaptic activity on the resting properties of cat neocortical pyramidal neurons in vivo [J].
Paré, D ;
Shink, E ;
Gaudreau, H ;
Destexhe, A ;
Lang, EJ .
JOURNAL OF NEUROPHYSIOLOGY, 1998, 79 (03) :1450-1460
[32]   BASAL FOREBRAIN CHOLINERGIC AND NONCHOLINERGIC PROJECTIONS TO THE THALAMUS AND BRAIN-STEM IN CATS AND MONKEYS [J].
PARENT, A ;
PARE, D ;
SMITH, Y ;
STERIADE, M .
JOURNAL OF COMPARATIVE NEUROLOGY, 1988, 277 (02) :281-301
[33]   VOLTAGE-DEPENDENT 40-HZ OSCILLATIONS IN RAT RETICULAR THALAMIC NEURONS INVIVO [J].
PINAULT, D ;
DESCHENES, M .
NEUROSCIENCE, 1992, 51 (02) :245-258
[34]   Differential effects of alpha-amino-3-hydroxy-5-methyl-4-isoxazole propionic acid and N-methyl-D-aspartate receptor antagonists applied to the basal forebrain on cortical acetylcholine release and electroencephalogram desynchronization [J].
Rasmusson, DD ;
Szerb, JC ;
Jordan, JL .
NEUROSCIENCE, 1996, 72 (02) :419-427
[35]   MODIFICATION OF NEOCORTICAL ACETYLCHOLINE-RELEASE AND ELECTROENCEPHALOGRAM DESYNCHRONIZATION DUE TO BRAIN-STEM STIMULATION BY DRUGS APPLIED TO THE BASAL FOREBRAIN [J].
RASMUSSON, DD ;
CLOW, K ;
SZERB, JC .
NEUROSCIENCE, 1994, 60 (03) :665-677
[36]   Multiple output pathways of the basal forebrain: organization, chemical heterogeneity, and roles in vigilance [J].
Semba, K .
BEHAVIOURAL BRAIN RESEARCH, 2000, 115 (02) :117-141
[37]   A MEG study of sleep [J].
Simon, NR ;
Manshanden, I ;
da Silva, FHL .
BRAIN RESEARCH, 2000, 860 (1-2) :64-76
[38]   CHOLINERGIC AND NONCHOLINERGIC NEURONS OF CAT BASAL FOREBRAIN PROJECT TO RETICULAR AND MEDIODORSAL THALAMIC NUCLEI [J].
STERIADE, M ;
PARENT, A ;
PARE, D ;
SMITH, Y .
BRAIN RESEARCH, 1987, 408 (1-2) :372-376
[39]   INHIBITORY PROCESSES AND INTERNEURONAL APPARATUS IN MOTOR CORTEX DURING SLEEP AND WAKING .1. BACKGROUND FIRING AND RESPONSIVENESS OF PYRAMIDAL TRACT NEURONS AND INTERNEURONS [J].
STERIADE, M ;
DESCHENE.M ;
OAKSON, G .
JOURNAL OF NEUROPHYSIOLOGY, 1974, 37 (05) :1065-1092
[40]  
STERIADE M, 1990, J NEUROSCI, V10, P2541