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Tytuł pozycji:

Unimanual motor learning impaired by frontomedial and insular lesions in man.

Tytuł:
Unimanual motor learning impaired by frontomedial and insular lesions in man.
Autorzy:
Kornhuber AW; Department of Neurology, Klinikum, Universität Ulm, Germany.
Lang W
Becker M
Uhl F
Goldenberg G
Lang M
Źródło:
Journal of neurology [J Neurol] 1995 Sep; Vol. 242 (9), pp. 568-78.
Typ publikacji:
Journal Article; Research Support, Non-U.S. Gov't
Język:
English
Imprint Name(s):
Original Publication: Berlin ; New York, Springer-Verlag
MeSH Terms:
Brain Injuries/*physiopathology
Frontal Lobe/*injuries
Functional Laterality/*physiology
Learning Disabilities/*physiopathology
Psychomotor Performance/*physiology
Adolescent ; Adult ; Aged ; Brain Injuries/diagnostic imaging ; Female ; Frontal Lobe/diagnostic imaging ; Humans ; Learning Disabilities/diagnostic imaging ; Male ; Middle Aged ; Neuronal Plasticity/physiology ; Tomography, X-Ray Computed
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Entry Date(s):
Date Created: 19950901 Date Completed: 19960222 Latest Revision: 20191210
Update Code:
20240104
DOI:
10.1007/BF00868809
PMID:
8551318
Czasopismo naukowe
We correlated impaired unimanual motor learning with the lesion site in 53 patients with chronic lesions predominantly of the frontal lobe. The lesions were assessed using computed tomography (CT), then transferred to standard templates of nine slices parallel to the canthomeatal plane and digitized with a raster matrix of 3 mm by 3 mm width. The learning task was to track a moving target on a computer screen with a dot guided by the preferred hand, while the horizontal coupling between hand movement and screen was inverted. The mean tracking error was recorded over eight successive trials of 80s duration. If the mean error of the last three trials was not lower than that of the first three trials, impaired motor learning was assumed. We correlated performance and lesion with a contingency table analysis for each raster element. Impaired motor learning was associated with a lesion within the supplementary motor area and adjacent anterior cingulate, and within the anterior insular region. Our results indicate that these regions are critical for motor learning and functional plasticity in man. Our data support activation patterns obtained with positron emission tomography.

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