Published in Exp Brain Res on January 01, 1991
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Failure to disrupt the 'sensorimotor' memory for lifting objects with a precision grip. Exp Brain Res (2007) 0.78
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Control of grip force and vertical posture while holding an object and being perturbed. Exp Brain Res (2016) 0.75
Roles of glabrous skin receptors and sensorimotor memory in automatic control of precision grip when lifting rougher or more slippery objects. Exp Brain Res (1984) 4.89
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Coordinated isometric muscle commands adequately and erroneously programmed for the weight during lifting task with precision grip. Exp Brain Res (1988) 2.26
Programmed and triggered actions to rapid load changes during precision grip. Exp Brain Res (1988) 2.18
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Signals in tactile afferents from the fingers eliciting adaptive motor responses during precision grip. Exp Brain Res (1987) 2.00
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Tangential torque effects on the control of grip forces when holding objects with a precision grip. J Neurophysiol (1997) 1.67
Development of human precision grip. I: Basic coordination of force. Exp Brain Res (1991) 1.66
Control of fingertip forces in multidigit manipulation. J Neurophysiol (1999) 1.64
Responses in glabrous skin mechanoreceptors during precision grip in humans. Exp Brain Res (1987) 1.59
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Independent control of human finger-tip forces at individual digits during precision lifting. J Physiol (1992) 1.51
Visual and somatosensory information about object shape control manipulative fingertip forces. J Neurosci (1997) 1.44
Control of grip force when tilting objects: effect of curvature of grasped surfaces and applied tangential torque. J Neurosci (1998) 1.39
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Ontogeny of postural adjustments during sitting in infancy: variation, selection and modulation. J Physiol (1996) 1.12
Integration of sensory information during the programming of precision grip: comments on the contributions of size cues. Exp Brain Res (1991) 1.12
The locomotion of the acute spinal cat injected with clonidine i.v. Brain Res (1973) 1.10
Sensitivity to edges of mechanoreceptive afferent units innervating the glabrous skin of the human head. Brain Res (1982) 1.09
Responses of human mechanoreceptive afferents to embossed dot arrays scanned across fingerpad skin. J Neurosci (1992) 1.09
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Thresholds of mechanosensitive afferents in the human hand as measured with von Frey hairs. Brain Res (1980) 1.07
Control of grip force during restraint of an object held between finger and thumb: responses of cutaneous afferents from the digits. Exp Brain Res (1996) 1.06
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Postural control in sitting children with cerebral palsy. Neurosci Biobehav Rev (1998) 1.05
Development of human precision grip. V. anticipatory and triggered grip actions during sudden loading. Exp Brain Res (1995) 1.04
Coordination of fingertip forces during human manipulation can emerge from independent neural networks controlling each engaged digit. Exp Brain Res (1997) 1.04
Force-frequency relationships of human thenar motor units. J Neurophysiol (1991) 1.04
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Phasic gain control of the transmission in cutaneous reflex pathways to motoneurones during 'fictive' locomotion. Brain Res (1978) 1.02
Is parkinsonian gait caused by a regression to an immature walking pattern? Adv Neurol (1984) 1.01
Development of human precision grip. II. Anticipatory control of isometric forces targeted for object's weight. Exp Brain Res (1992) 1.01
Visual and tactile information about object-curvature control fingertip forces and grasp kinematics in human dexterous manipulation. J Neurophysiol (2000) 1.00
Quantitative assessment of mirror movements in children and adolescents with hemiplegic cerebral palsy. Dev Med Child Neurol (2000) 1.00
Attempts to physiologically classify human thenar motor units. J Neurophysiol (1991) 0.99
Epigenetic development of postural responses for sitting during infancy. Exp Brain Res (1994) 0.98
Control of grip force during restraint of an object held between finger and thumb: responses of muscle and joint afferents from the digits. Exp Brain Res (1996) 0.98
Formation and lateralization of internal representations underlying motor commands during precision grip. Neuropsychologia (1994) 0.97
Coordination of manipulative forces in Parkinson's disease. Exp Neurol (1997) 0.97
Time-varying enhancement of human cortical excitability mediated by cutaneous inputs during precision grip. J Physiol (1994) 0.96
Simultaneous movements of upper and lower limbs are coordinated by motor representations that are shared by both limbs: a PET study. Eur J Neurosci (2000) 0.96
EMG changes in human thenar motor units with force potentiation and fatigue. J Neurophysiol (2005) 0.95
Training affects the development of postural adjustments in sitting infants. J Physiol (1996) 0.95
Directional sensitivity of human periodontal mechanoreceptive afferents to forces applied to the teeth. J Physiol (1992) 0.95
Control of forces applied by individual fingers engaged in restraint of an active object. J Neurophysiol (1997) 0.95
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Impaired sensory-motor integration during grasping in writer's cramp. Brain (1996) 0.94
Acute impairment of the sensitivity of skin mechanoreceptive units caused by vibration exposure of the hand. Ergonomics (1986) 0.94
Phase-dependent organization of postural adjustments associated with arm movements while walking. J Neurophysiol (1986) 0.94
Influence of two different sitting positions on postural adjustments in children with spastic diplegia. Dev Med Child Neurol (2001) 0.94
Microelectrode recordings from human oral mechanoreceptors. Brain Res (1976) 0.94
The integration of haptically acquired size information in the programming of precision grip. Exp Brain Res (1991) 0.93
Anticipatory control of manipulative forces in Parkinson's disease. Exp Neurol (1997) 0.93
Development of human precision grip. IV. Tactile adaptation of isometric finger forces to the frictional condition. Exp Brain Res (1995) 0.93