GATING OF SOMATOSENSORY-EVOKED RESPONSES DURING ACTIVE FINGER MOVEMENTS - MAGNETOENCEPHALOGRAPHIC STUDIES

被引:84
作者
KAKIGI, R
KOYAMA, S
HOSHIYAMA, M
WATANABE, S
SHIMOJO, M
KITAMURA, Y
机构
[1] Laboratory for Integrative Physiology, National Institute for Physiological Sciences, Okazaki, 444, Myodaiji
关键词
SOMATOSENSORY EVOKED MAGNETIC FIELDS; MAGNETOENCEPHALOGRAPHY; GATING; MEDIAN NERVE; SENSORY CORTEX; 2ND SENSORY CORTEX;
D O I
10.1016/0022-510X(94)00230-L
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
The ''gating'' effects caused by active finger movements on somatosensory evoked magnetic fields (SEFs) following stimulation of the median nerve were examined in normal subjects. The effects of the interfering stimulus were best demonstrated by subtracting the ''interference'' wave forms from the ''control'' wave forms to derive the ''difference'' wave form. The short-latency cortical deflections, N20m-P20m, P30m-N30m and P25m-N35m were significantly attenuated with no latency changes. In contrast, the following middle-latency deflections, the N40m-P40m and the P60m-N60m were clearly changed in terms of latency and duration by the interference. The D30m-U30m and the U60m-D60m in the ''difference'' wave form were derived from these interference changes. It is considered that the gating effects on all deflections took place in the hemisphere contralateral to the stimulated median nerve, because all of the equivalent current dipoles (ECDs) of the short- and the middle-latency deflections in the ''control'', ''interference'' and ''difference'' wave forms were located there. The gating effects on the short-latency deflections were suggested to be due to the interactions between the neurons in areas 1 and 3b, which were activated by sensory inputs from cutaneous mechanoreceptors, and the neurons in area 3a which were activated by sensory inputs from the muscle spindles. The gating effects on the middle-latency deflections may mainly be due to the excitations of neurons in area 4 caused by either continuous movement-related activities or by sensory inputs spreading from the sensory cortex.
引用
收藏
页码:195 / 204
页数:10
相关论文
共 45 条
[1]   PROPRIOCEPTIVE MODULATION OF SOMATOSENSORY EVOKED-POTENTIALS DURING ACTIVE OR PASSIVE FINGER MOVEMENTS IN MAN [J].
ABBRUZZESE, G ;
RATTO, S ;
FAVALE, E ;
ABBRUZZESE, M .
JOURNAL OF NEUROLOGY NEUROSURGERY AND PSYCHIATRY, 1981, 44 (10) :942-949
[2]   HUMAN CORTICAL POTENTIALS-EVOKED BY STIMULATION OF THE MEDIAN NERVE .2. CYTOARCHITECTONIC AREAS GENERATING LONG-LATENCY ACTIVITY [J].
ALLISON, T ;
MCCARTHY, G ;
WOOD, CC ;
WILLIAMSON, PD ;
SPENCER, DD .
JOURNAL OF NEUROPHYSIOLOGY, 1989, 62 (03) :711-722
[3]   HUMAN CORTICAL POTENTIALS-EVOKED BY STIMULATION OF THE MEDIAN NERVE .1. CYTOARCHITECTONIC AREAS GENERATING SHORT-LATENCY ACTIVITY [J].
ALLISON, T ;
MCCARTHY, G ;
WOOD, CC ;
DARCEY, TM ;
SPENCER, DD ;
WILLIAMSON, PD .
JOURNAL OF NEUROPHYSIOLOGY, 1989, 62 (03) :694-710
[4]   SPATIOTEMPORAL MODELING OF CEREBRAL EVOKED MAGNETIC-FIELDS TO MEDIAN NERVE-STIMULATION [J].
BAUMGARTNER, C ;
SUTHERLING, WW ;
DI, S ;
BARTH, DS .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1991, 79 (01) :27-35
[5]   SOMATICALLY EVOKED MAGNETIC-FIELDS OF HUMAN-BRAIN [J].
BRENNER, D ;
LIPTON, J ;
KAUFMAN, L ;
WILLIAMSON, SJ .
SCIENCE, 1978, 199 (4324) :81-83
[6]  
BROUGHTON R, 1965, ELECTROEN CLIN NEURO, V18, P720
[7]   MENTAL MOVEMENT SIMULATION AFFECTS THE N-30 FRONTAL COMPONENT OF THE SOMATOSENSORY EVOKED-POTENTIAL [J].
CHERON, G ;
BORENSTEIN, S .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1992, 84 (03) :288-292
[8]   GATING OF THE EARLY COMPONENTS OF THE FRONTAL AND PARIETAL SOMATOSENSORY EVOKED-POTENTIALS IN DIFFERENT SENSORY-MOTOR INTERFERENCE MODALITIES [J].
CHERON, G ;
BORENSTEIN, S .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1991, 80 (06) :522-530
[9]   LOCALIZATION, TIMING AND SPECIFICITY OF GATING OF SOMATOSENSORY EVOKED-POTENTIALS DURING ACTIVE MOVEMENT IN MAN [J].
COHEN, LG ;
STARR, A .
BRAIN, 1987, 110 :451-467
[10]   VIBRATION AND MUSCLE-CONTRACTION AFFECT SOMATOSENSORY EVOKED-POTENTIALS [J].
COHEN, LG ;
STARR, A .
NEUROLOGY, 1985, 35 (05) :691-698