CORTICAL REACTIVITY IN PROGRESSIVE MYOCLONUS EPILEPSY

被引:43
作者
KARHU, J
HARI, R
PAETAU, R
KAJOLA, M
MERVAALA, E
机构
[1] HELSINKI UNIV TECHNOL, LOW TEMP LAB, SF-02150 ESPOO, FINLAND
[2] KUOPIO UNIV HOSP, DEPT CLIN NEUROPHYSIOL, SF-70210 KUOPIO, FINLAND
来源
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY | 1994年 / 90卷 / 02期
基金
芬兰科学院;
关键词
MAGNETOENCEPHALOGRAPHY; MYOCLONUS; EPILEPSY; MU RHYTHM; SENSORIMOTOR CORTEX; SOMATOSENSORY EVOKED RESPONSES; AUDITORY EVOKED RESPONSES;
D O I
10.1016/0013-4694(94)90001-9
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
We studied 4 patients with progressive myoclonus epilepsy (Unverricht-Lundborg disease; ULD); Somatosensory evoked fields (SEFs), auditory evoked fields (AEFs), and spontaneous activity over the somatomotor cortex were recorded with a 24-channel SQUID gradiometer. All patients had ''giant'' 20-45 msec median nerve SEFs at the first somatomotor cortex, with 2-6 times larger amplitudes than the healthy control subjects. Later deflections were not similarly enhanced. The dependence of SEF amplitudes on interstimulus interval (0.2-4 sec) and on successive ulnar-median nerve stimulation (stimulus interval 40 msec) was comparable to that in controls. Cortical AEFs were attenuated and delayed. In 3 patients, the spontaneous activity consisted of 6-8 Hz mu rhythm, which originated within 2 cm from the sources of SEFs and was abolished by clenching of the contralateral fist. Control subjects had major spectral peaks around 10 and 20 Hz. The SEF amplitudes and the strength of the 6-10 Hz mu correlated strongly, suggesting that some components of evoked and spontaneous activity obtain contributions from overlapping neuronal populations. The results imply that ULD is associated with thalamo-cortical hyperreactivity in the sensorimotor but not in the auditory system.
引用
收藏
页码:93 / 102
页数:10
相关论文
共 40 条
[1]   MULTICHANNEL SQUID SYSTEMS FOR BRAIN RESEARCH [J].
AHONEN, AI ;
HAMALAINEN, MS ;
KAJOLA, MJ ;
KNUUTILA, JET ;
LOUNASMAA, OV ;
SIMOLA, JT ;
TESCHE, CD ;
VILKMAN, VA .
IEEE TRANSACTIONS ON MAGNETICS, 1991, 27 (02) :2786-2792
[3]  
GASTAUT MH, 1952, REV NEUROL, V87, P176
[4]   Myoclonic epilepsy [J].
Grinker, RR ;
Serota, H ;
Stein, SI .
ARCHIVES OF NEUROLOGY AND PSYCHIATRY, 1938, 40 (05) :968-980
[5]   CORTICAL REFLEX MYOCLONUS [J].
HALLETT, M ;
CHADWICK, D ;
MARSDEN, CD .
NEUROLOGY, 1979, 29 (08) :1107-1125
[6]   ELECTROPHYSIOLOGICAL STUDY OF MYOCLONUS IN MAN [J].
HALLIDAY, AM .
BRAIN, 1967, 90 :241-+
[7]  
HARI R, 1983, ACTA NEUROL SCAND, V67, P376
[8]   RECORDING AND INTERPRETATION OF CEREBRAL MAGNETIC-FIELDS [J].
HARI, R ;
LOUNASMAA, OV .
SCIENCE, 1989, 244 (4903) :432-436
[9]   SOMATOSENSORY EVOKED CEREBRAL MAGNETIC-FIELDS FROM SI AND SII IN MAN [J].
HARI, R ;
REINIKAINEN, K ;
KAUKORANTA, E ;
HAMALAINEN, M ;
ILMONIEMI, R ;
PENTTINEN, A ;
SALMINEN, J ;
TESZNER, D .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1984, 57 (03) :254-263
[10]   FUNCTIONAL-ORGANIZATION OF THE HUMAN 1ST AND 2ND SOMATOSENSORY CORTICES - A NEUROMAGNETIC STUDY [J].
HARI, R ;
KARHU, J ;
HAMALAINEN, M ;
KNUUTILA, J ;
SALONEN, O ;
SAMS, M ;
VILKMAN, V .
EUROPEAN JOURNAL OF NEUROSCIENCE, 1993, 5 (06) :724-734