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Published in: Experimental Brain Research 2/2005

01-02-2005 | Research Article

Interlimb transfer of load compensation during rapid elbow joint movements

Authors: Leia B. Bagesteiro, Robert L. Sainburg

Published in: Experimental Brain Research | Issue 2/2005

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Abstract

Previous research has shown that training of a novel task can improve subsequent performance in the opposite arm owing to anticipation of the previously learned task conditions. Interestingly, we recently reported preliminary evidence that such transfer might also include modulation of feedback-mediated responses. We now test interlimb transfer of load compensation responses, measured through kinematic and EMG recordings during rapid 20° elbow flexion movements. Two subject groups, LR and RL, each comprising six right-handed subjects, first performed using either the left (LR) or right (RL) arm, followed by opposite arm performance. After 30 trials of consistent performance, five random trials within a background of 50 trials were loaded with a 2-kg mass prior to the “go” signal. We compared load compensation responses for naïve performance with those following opposite arm exposure. Under naïve conditions, the resulting load compensation responses began about 50 ms following movement onset, and were substantially more effective for the nondominant arm. Opposite arm exposure substantially improved the accuracy of only dominant arm responses. This, however, did not occur through changes in the short latency components of the load compensation response. Instead, changes in muscle activities, associated with interlimb transfer, began some 150 ms following movement onset. We expect that these changes represent transfer in the “volitional” component of the load compensation response. Because the shorter latency response was unaffected by opposite arm exposure, modulation of this component likely requires prior experience with limb specific effectors.
Literature
go back to reference Bagesteiro LB, Sainburg RL (2003) Nondominant arm advantages in load compensation during rapid elbow joint movements. J Neurophysiol 90:1503–1513PubMed Bagesteiro LB, Sainburg RL (2003) Nondominant arm advantages in load compensation during rapid elbow joint movements. J Neurophysiol 90:1503–1513PubMed
go back to reference Bennett DJ, Gorassini M, Prochazka A (1994) Catching a ball: contributions of intrinsic muscle stiffness, reflexes, and higher order responses. Can J Physiol Pharmacol 72:525–534PubMed Bennett DJ, Gorassini M, Prochazka A (1994) Catching a ball: contributions of intrinsic muscle stiffness, reflexes, and higher order responses. Can J Physiol Pharmacol 72:525–534PubMed
go back to reference Bizzi E, Dev P, Morasso P, Polit A (1978) Effect of load disturbances during centrally initiated movements. J Neurophysiol 41:542–556PubMed Bizzi E, Dev P, Morasso P, Polit A (1978) Effect of load disturbances during centrally initiated movements. J Neurophysiol 41:542–556PubMed
go back to reference Bock O (1993) Early stages of load compensation in human aimed arm movements. Behav Brain Res 55:61–68CrossRefPubMed Bock O (1993) Early stages of load compensation in human aimed arm movements. Behav Brain Res 55:61–68CrossRefPubMed
go back to reference Brown SH, Cooke JD (1981) Responses to force perturbations preceding voluntary human arm movements. Brain Res 220:350–355CrossRefPubMed Brown SH, Cooke JD (1981) Responses to force perturbations preceding voluntary human arm movements. Brain Res 220:350–355CrossRefPubMed
go back to reference Brown SH, Cooke JD (1986) Initial agonist burst is modified by perturbations preceding movement. Brain Res 377:311–322CrossRefPubMed Brown SH, Cooke JD (1986) Initial agonist burst is modified by perturbations preceding movement. Brain Res 377:311–322CrossRefPubMed
go back to reference Crago PE, Houk JC, Hasan Z (1976) Regulatory actions of human stretch reflex. J Neurophysiol 39:925–935PubMed Crago PE, Houk JC, Hasan Z (1976) Regulatory actions of human stretch reflex. J Neurophysiol 39:925–935PubMed
go back to reference Criscimagna-Hemminger SE, Donchin O, Gazzaniga MS, Shadmehr R (2003) Learned dynamics of reaching movements generalize from dominant to nondominant arm. J Neurophysiol 89:168–176PubMed Criscimagna-Hemminger SE, Donchin O, Gazzaniga MS, Shadmehr R (2003) Learned dynamics of reaching movements generalize from dominant to nondominant arm. J Neurophysiol 89:168–176PubMed
go back to reference Day BL, Rothwell JC, Marsden CD (1983) Interaction between the long-latency stretch reflex and voluntary electromyographic activity prior to a rapid voluntary motor reaction. Brain Res 270:55–62CrossRefPubMed Day BL, Rothwell JC, Marsden CD (1983) Interaction between the long-latency stretch reflex and voluntary electromyographic activity prior to a rapid voluntary motor reaction. Brain Res 270:55–62CrossRefPubMed
go back to reference De Luca CJ (1997) The use of surface electromyography in biomechanics. J Appl Biomechanics 13:135–163 De Luca CJ (1997) The use of surface electromyography in biomechanics. J Appl Biomechanics 13:135–163
go back to reference Dizio P, Lackner JR (1995) Motor adaptation to Coriolis force perturbations of reaching movements: endpoint but not trajectory adaptation transfers to the nonexposed arm. J Neurophysiol 74:1787–1792PubMed Dizio P, Lackner JR (1995) Motor adaptation to Coriolis force perturbations of reaching movements: endpoint but not trajectory adaptation transfers to the nonexposed arm. J Neurophysiol 74:1787–1792PubMed
go back to reference Elliott D, Roy EA (1981) Interlimb transfer after adaptation to visual displacement: patterns predicted from the functional closeness of limb neural control centers. Perception 10:383–389PubMed Elliott D, Roy EA (1981) Interlimb transfer after adaptation to visual displacement: patterns predicted from the functional closeness of limb neural control centers. Perception 10:383–389PubMed
go back to reference Evarts EV, Tanji J (1974) Gating of motor cortex reflexes by prior instruction. Brain Res 71 (2–3):479–494 Evarts EV, Tanji J (1974) Gating of motor cortex reflexes by prior instruction. Brain Res 71 (2–3):479–494
go back to reference Evarts EV, Tanji J (1976) Reflex and intended responses in motor cortex pyramidal tract neurons of monkey. J Neurophysiol 39:1069–1080PubMed Evarts EV, Tanji J (1976) Reflex and intended responses in motor cortex pyramidal tract neurons of monkey. J Neurophysiol 39:1069–1080PubMed
go back to reference Ghez C, Shinoda Y (1978) Spinal mechanisms of the functional stretch reflex. Exp Brain Res 32:55–68PubMed Ghez C, Shinoda Y (1978) Spinal mechanisms of the functional stretch reflex. Exp Brain Res 32:55–68PubMed
go back to reference Gielen CC, Ramaekers L, van Zuylen EJ (1988) Long-latency stretch reflexes as co-ordinated functional responses in man. J Physiol 407:275–292PubMed Gielen CC, Ramaekers L, van Zuylen EJ (1988) Long-latency stretch reflexes as co-ordinated functional responses in man. J Physiol 407:275–292PubMed
go back to reference Godaux E, Desmedt JE (1979) Long loop reflexes during ballistic movements (proceedings). Arch Int Physiol Biochim 87:346–347PubMed Godaux E, Desmedt JE (1979) Long loop reflexes during ballistic movements (proceedings). Arch Int Physiol Biochim 87:346–347PubMed
go back to reference Hodges PW, Bui BH (1996) A comparison of computer-based methods for the determination of onset of muscle contraction using electromyography. Electroencephalogr Clin Neurophysiol 101:511–519CrossRefPubMed Hodges PW, Bui BH (1996) A comparison of computer-based methods for the determination of onset of muscle contraction using electromyography. Electroencephalogr Clin Neurophysiol 101:511–519CrossRefPubMed
go back to reference Houk JC (1976) An assessment of stretch reflex function. Prog Brain Res 44:303–314PubMed Houk JC (1976) An assessment of stretch reflex function. Prog Brain Res 44:303–314PubMed
go back to reference Imamizu H, Shimojo S (1995) The locus of visual-motor learning at the task or manipulator level: implications from intermanual transfer. J Exp Psychol Hum Percept Perform 21:719–733CrossRefPubMed Imamizu H, Shimojo S (1995) The locus of visual-motor learning at the task or manipulator level: implications from intermanual transfer. J Exp Psychol Hum Percept Perform 21:719–733CrossRefPubMed
go back to reference Lacquaniti F, Soechting JF, Terzuolo CA (1982) Some factors pertinent to the organization and control of arm movements. Brain Res 252:394–397CrossRefPubMed Lacquaniti F, Soechting JF, Terzuolo CA (1982) Some factors pertinent to the organization and control of arm movements. Brain Res 252:394–397CrossRefPubMed
go back to reference Lacquaniti F, Borghese NA, Carrozzo M (1991) Transient reversal of the stretch reflex in human arm muscles. J Neurophysiol 66:939–954PubMed Lacquaniti F, Borghese NA, Carrozzo M (1991) Transient reversal of the stretch reflex in human arm muscles. J Neurophysiol 66:939–954PubMed
go back to reference Laszlo JI, Baguley RA, Bairstow PJ (1970) Bilateral transfer in tapping skill in the absence of peripheral information. J Mot Behav 2:261–271 Laszlo JI, Baguley RA, Bairstow PJ (1970) Bilateral transfer in tapping skill in the absence of peripheral information. J Mot Behav 2:261–271
go back to reference Latash ML (1999) Mirror writing: learning, transfer, and implications for internal inverse models. J Mot Behav 31:107–111PubMed Latash ML (1999) Mirror writing: learning, transfer, and implications for internal inverse models. J Mot Behav 31:107–111PubMed
go back to reference Marsden CD, Merton PA, Morton HB (1973) Latency measurements compatible with a cortical pathway for the stretch reflex in man. J Physiol 230 (1):58P–59PPubMed Marsden CD, Merton PA, Morton HB (1973) Latency measurements compatible with a cortical pathway for the stretch reflex in man. J Physiol 230 (1):58P–59PPubMed
go back to reference Marsden CD, Merton PA, Morton HB (1976) Stretch reflex and servo action in a variety of human muscles. J Physiol 259:531–560PubMed Marsden CD, Merton PA, Morton HB (1976) Stretch reflex and servo action in a variety of human muscles. J Physiol 259:531–560PubMed
go back to reference McCloskey DI, Prochazka A (1994) The role of sensory information in the guidance of voluntary movement: reflections on a symposium held at the 22nd annual meeting of the Society for Neuroscience. Somatosens Mot Res 11:69–76PubMed McCloskey DI, Prochazka A (1994) The role of sensory information in the guidance of voluntary movement: reflections on a symposium held at the 22nd annual meeting of the Society for Neuroscience. Somatosens Mot Res 11:69–76PubMed
go back to reference Morton SM, Lang CE, Bastian AJ (2001) Inter- and intra-limb generalization of adaptation during catching. Exp Brain Res 141:438–445CrossRefPubMed Morton SM, Lang CE, Bastian AJ (2001) Inter- and intra-limb generalization of adaptation during catching. Exp Brain Res 141:438–445CrossRefPubMed
go back to reference Oldfield RC (1971) The assessment and analysis of handedness: the Edinburgh Inventory. Neuropsychologia 9:97–113CrossRefPubMed Oldfield RC (1971) The assessment and analysis of handedness: the Edinburgh Inventory. Neuropsychologia 9:97–113CrossRefPubMed
go back to reference Prochazka A (1986) Proprioception during voluntary movement. Can J Physiol Pharmacol 64:499–504PubMed Prochazka A (1986) Proprioception during voluntary movement. Can J Physiol Pharmacol 64:499–504PubMed
go back to reference Prochazka A (1989) Sensorimotor gain control: a basic strategy of motor systems? Prog Neurobiol 33:281–307CrossRefPubMed Prochazka A (1989) Sensorimotor gain control: a basic strategy of motor systems? Prog Neurobiol 33:281–307CrossRefPubMed
go back to reference Prochazka A, Stephens JA, Wand P (1979) Muscle spindle discharge in normal and obstructed movements. J Physiol 287:57–66PubMed Prochazka A, Stephens JA, Wand P (1979) Muscle spindle discharge in normal and obstructed movements. J Physiol 287:57–66PubMed
go back to reference Prochazka A, Gillard D, Bennett DJ (1997a) Implications of positive feedback in the control of movement. J Neurophysiol 77:3237–3251PubMed Prochazka A, Gillard D, Bennett DJ (1997a) Implications of positive feedback in the control of movement. J Neurophysiol 77:3237–3251PubMed
go back to reference Prochazka A, Gillard D, Bennett DJ (1997b) Positive force feedback control of muscles. J Neurophysiol 77:3226–3236PubMed Prochazka A, Gillard D, Bennett DJ (1997b) Positive force feedback control of muscles. J Neurophysiol 77:3226–3236PubMed
go back to reference Prochazka A, Clarac F, Loeb GE, Rothwell JC, Wolpaw JR (2000) What do reflex and voluntary mean? Modern views on an ancient debate. Exp Brain Res 130:417–432CrossRefPubMed Prochazka A, Clarac F, Loeb GE, Rothwell JC, Wolpaw JR (2000) What do reflex and voluntary mean? Modern views on an ancient debate. Exp Brain Res 130:417–432CrossRefPubMed
go back to reference Rothwell JC, Traub MM, Marsden CD (1980) Influence of voluntary intent on the human long-latency stretch reflex. Nature 286:496–498PubMed Rothwell JC, Traub MM, Marsden CD (1980) Influence of voluntary intent on the human long-latency stretch reflex. Nature 286:496–498PubMed
go back to reference Sainburg RL (2002) Evidence for a dynamic-dominance hypothesis of handedness. Exp Brain Res 142:241–258CrossRefPubMed Sainburg RL (2002) Evidence for a dynamic-dominance hypothesis of handedness. Exp Brain Res 142:241–258CrossRefPubMed
go back to reference Sainburg RL, Wang J (2002) Interlimb transfer of visuomotor rotations: independence of direction and final position information. Exp Brain Res 145:437–447CrossRefPubMed Sainburg RL, Wang J (2002) Interlimb transfer of visuomotor rotations: independence of direction and final position information. Exp Brain Res 145:437–447CrossRefPubMed
go back to reference Shapiro MB, Gottlieb GL, Moore CG, Corcos DM (2002) Electromyographic responses to an unexpected load in fast voluntary movements: descending regulation of segmental reflexes. J Neurophysiol 88:1059–1063PubMed Shapiro MB, Gottlieb GL, Moore CG, Corcos DM (2002) Electromyographic responses to an unexpected load in fast voluntary movements: descending regulation of segmental reflexes. J Neurophysiol 88:1059–1063PubMed
go back to reference Shapiro MB, Gottlieb GL, Corcos DM (2004) EMG responses to an unexpected load in fast movements are delayed with an increase in the expected movement time. J Neurophysiol 91:2135–2147CrossRefPubMed Shapiro MB, Gottlieb GL, Corcos DM (2004) EMG responses to an unexpected load in fast movements are delayed with an increase in the expected movement time. J Neurophysiol 91:2135–2147CrossRefPubMed
go back to reference Tatton WG, Forner SD, Gerstein GL, Chambers WW, Liu CN (1975) The effect of postcentral cortical lesions on motor responses to sudden upper limb displacements in monkeys. Brain Res 96:108–113CrossRefPubMed Tatton WG, Forner SD, Gerstein GL, Chambers WW, Liu CN (1975) The effect of postcentral cortical lesions on motor responses to sudden upper limb displacements in monkeys. Brain Res 96:108–113CrossRefPubMed
go back to reference Thut G, Cook ND, Regard M, Leenders KL, Halsband U, Landis T (1996) Intermanual transfer of proximal and distal motor engrams in humans. Exp Brain Res 108:321–327PubMed Thut G, Cook ND, Regard M, Leenders KL, Halsband U, Landis T (1996) Intermanual transfer of proximal and distal motor engrams in humans. Exp Brain Res 108:321–327PubMed
go back to reference Wang J, Sainburg RL (2003) Mechanisms underlying interlimb transfer of visuomotor rotations. Exp Brain Res 149:520–526.PubMed Wang J, Sainburg RL (2003) Mechanisms underlying interlimb transfer of visuomotor rotations. Exp Brain Res 149:520–526.PubMed
Metadata
Title
Interlimb transfer of load compensation during rapid elbow joint movements
Authors
Leia B. Bagesteiro
Robert L. Sainburg
Publication date
01-02-2005
Publisher
Springer-Verlag
Published in
Experimental Brain Research / Issue 2/2005
Print ISSN: 0014-4819
Electronic ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-004-2055-2

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