Literature DB >> 9787008

Partial inactivation of the primary motor cortex hand area: effects on individuated finger movements.

M H Schieber1, A V Poliakov.   

Abstract

After large lesions of the primary motor cortex (M1), voluntary movements of affected body parts are weak and slow. In addition, the relative independence of moving one body part without others is lost; attempts at individuated movements of a given body part are accompanied by excessive, unintended motion of contiguous body parts. The effects of partial inactivation of the M1 hand area are comparatively unknown, however. If the M1 hand area contains the somatotopically ordered finger representations implied by the classic homunculus or simiusculus, then partial inactivation might produce weakness, slowness, and loss of independence of one or two adjacent digits without affecting other digits. But if control of each finger movement is distributed in the M1 hand area as many studies suggest, then partial inactivation might produce dissociation of weakness, slowness, and relative independence of movement, and which fingers movements are impaired might be unrelated to the location of the inactivation along the central sulcus. To investigate the motoric deficits resulting from partial inactivation of the M1 hand area, we therefore made single intracortical injections of muscimol as trained monkeys performed visually cued, individuated flexion-extension movements of the fingers and wrist. We found little if any evidence that which finger movements were impaired after each injection was related to the injection location along the central sulcus. Unimpaired fingers could be flanked on both sides by impaired fingers, and the flexion movements of a given finger could be unaffected even though the extension movements were impaired, or vice versa. Partial inactivation also could produce dissociated weakness and slowness versus loss of independence in a given finger movement. These findings suggest that control of each individuated finger movement is distributed widely in the M1 hand area.

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Year:  1998        PMID: 9787008      PMCID: PMC6793546     

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  54 in total

1.  Neuronal coding of static force in the primate motor cortex.

Authors:  M C Hepp-Reymond; U R Wyss; R Anner
Journal:  J Physiol (Paris)       Date:  1978

2.  Spatial organization of precentral cortex in awake primates. II. Motor outputs.

Authors:  H C Kwan; W A MacKay; J T Murphy; Y C Wong
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3.  The Croonian Lectures ON MUSCULAR MOVEMENTS AND THEIR REPRESENTATION IN THE CENTRAL NERVOUS SYSTEM: Delivered before the Royal College of Physicians of London.

Authors:  C E Beevor
Journal:  Br Med J       Date:  1903-06-13

4.  Long-range focal collateralization of axons arising from corticocortical cells in monkey sensory-motor cortex.

Authors:  J DeFelipe; M Conley; E G Jones
Journal:  J Neurosci       Date:  1986-12       Impact factor: 6.167

5.  Mapping by microstimulation of overlapping projections from area 4 to motor units of the baboon's hand.

Authors:  P Andersen; P J Hagan; C G Phillips; T P Powell
Journal:  Proc R Soc Lond B Biol Sci       Date:  1975-01-21

6.  Effects of unilateral and bilateral pyramidotomy on a conditioned rapid precision grip in monkeys (Macaca fascicularis).

Authors:  E Trouche; M Wiesendanger
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7.  Relation of pyramidal tract activity to force exerted during voluntary movement.

Authors:  E V Evarts
Journal:  J Neurophysiol       Date:  1968-01       Impact factor: 2.714

8.  Relation of activity in precentral cortical neurons to force and rate of force change during isometric contractions of finger muscles.

Authors:  A M Smith; M C Hepp-Reymond; U R Wyss
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9.  Speed, accuracy, and strength of forelimb movement after unilateral pyramidotomy in rhesus monkeys.

Authors:  C H Beck; W W Chambers
Journal:  J Comp Physiol Psychol       Date:  1970-02

10.  The long-term effects of removal of sensorimotor cortex in infant and adult rhesus monkeys.

Authors:  R E Passingham; V H Perry; F Wilkinson
Journal:  Brain       Date:  1983-09       Impact factor: 13.501

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8.  Surround inhibition depends on the force exerted and is abnormal in focal hand dystonia.

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