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Published in: Experimental Brain Research 1/2014

01-01-2014 | Research Article

Explicit knowledge about the availability of visual feedback affects grasping with the left but not the right hand

Authors: Rixin Tang, Robert L. Whitwell, Melvyn A. Goodale

Published in: Experimental Brain Research | Issue 1/2014

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Abstract

Previous research (Whitwell et al. in Exp Brain Res 188:603–611, 2008; Whitwell and Goodale in Exp Brain Res 194:619–629, 2009) has shown that trial history, but not anticipatory knowledge about the presence or absence of visual feedback on an upcoming trial, plays a vital role in determining how that feedback is exploited when grasping with the right hand. Nothing is known about how the non-dominant left hand behaves under the same feedback regimens. In present study, therefore, we compared peak grip aperture (PGA) for left- and right-hand grasps executed with and without visual feedback (i.e., closed- vs. open-loop conditions) in right-handed individuals under three different trial schedules: the feedback conditions were blocked separately, they were randomly interleaved, or they were alternated. When feedback conditions were blocked, the PGA was much larger for open-loop trials as compared to closed-loop trials, although this difference was more pronounced for right-hand grasps than left-hand grasps. Like Whitwell et al., we found that mixing open- and closed-loop trials together, compared to blocking them separately, homogenized the PGA for open- and closed-loop grasping in the right hand (i.e., the PGAs became smaller on open-loop trials and larger on closed-loop trials). In addition, the PGAs for right-hand grasps were entirely determined by trial history and not by knowledge of whether or not visual feedback would be available on an upcoming trial. In contrast to grasps made with the right hand, grasps made by the left hand were affected both by trial history and by anticipatory knowledge of the upcoming visual feedback condition. But these effects were observed only on closed-loop trials, i.e., the PGAs of grasps made with the left hand on closed-loop trials were smaller when participants could anticipate the availability of feedback on an upcoming trial (alternating trials) than when they could not (randomized trials). In contrast, grasps made with the left hand on open-loop trials exhibited the same large PGAs under all feedback schedules: blocked, random, or alternating. In other words, there was no evidence for homogenization. Taken together, these results suggest that in addition to the real-time demands of the task, such as the target’s size and position and the availability of visual feedback, the initial (i.e., pre-movement) programming of right-hand grasping relies on what happened on the previous trial, whereas the programming of left-hand grasping is more cognitively supervised and exploits explicit information about trial order to prepare for an upcoming trial.
Literature
go back to reference Boller F, Cole M, Kim Y, Mack JL, Patawaran C (1975) Optic ataxia:clinical-radiological correlations with the EMIscan. J Neurol Neurosurg Psychiatry 38:954–958PubMedCrossRef Boller F, Cole M, Kim Y, Mack JL, Patawaran C (1975) Optic ataxia:clinical-radiological correlations with the EMIscan. J Neurol Neurosurg Psychiatry 38:954–958PubMedCrossRef
go back to reference Boulinguez P, Velay JL, Nougier V (2001) Manual asymmetries in reaching movement control. II: study of left-handers. Cortex 37:123–138PubMedCrossRef Boulinguez P, Velay JL, Nougier V (2001) Manual asymmetries in reaching movement control. II: study of left-handers. Cortex 37:123–138PubMedCrossRef
go back to reference Carson RG, Elliott D, Goodman D, Thyer L, Chua R, Roy EA (1993) The role of impulse variability in manual-aiming asymmetries. Psychol Res 55:291–298CrossRef Carson RG, Elliott D, Goodman D, Thyer L, Chua R, Roy EA (1993) The role of impulse variability in manual-aiming asymmetries. Psychol Res 55:291–298CrossRef
go back to reference Cheng DT, Luis M, Tremblay L (2008) Randomizing visual feedback in manual aiming: reminiscence of the previous trial condition and prior knowledge of feedback availability. Exp Brain Res 189:403–410PubMedCrossRef Cheng DT, Luis M, Tremblay L (2008) Randomizing visual feedback in manual aiming: reminiscence of the previous trial condition and prior knowledge of feedback availability. Exp Brain Res 189:403–410PubMedCrossRef
go back to reference de Lussanet MHE, Smeets JBJ, Brenner E (2001) The effect of expectations on hitting moving targets: influence of the preceding target’s speed. Exp Brain Res 137:246–248PubMedCrossRef de Lussanet MHE, Smeets JBJ, Brenner E (2001) The effect of expectations on hitting moving targets: influence of the preceding target’s speed. Exp Brain Res 137:246–248PubMedCrossRef
go back to reference de Lussanet MHE, Smeets JBJ, Brenner E (2002) The relation between task history and movement strategy. Behav Brain Res 129:51–59PubMedCrossRef de Lussanet MHE, Smeets JBJ, Brenner E (2002) The relation between task history and movement strategy. Behav Brain Res 129:51–59PubMedCrossRef
go back to reference Fecteau JH, Munoz DP (2003) Exploring the consequences of the previous trial. Nat Rev Neurosci 4:435–443PubMedCrossRef Fecteau JH, Munoz DP (2003) Exploring the consequences of the previous trial. Nat Rev Neurosci 4:435–443PubMedCrossRef
go back to reference Ferro JM (1984) Transient inaccuracy in reaching caused by a posterior parietal lobe lesion. J Neurol Neurosurg Psychiatry 47:1016–1019PubMedCrossRef Ferro JM (1984) Transient inaccuracy in reaching caused by a posterior parietal lobe lesion. J Neurol Neurosurg Psychiatry 47:1016–1019PubMedCrossRef
go back to reference Fukui T, Inui T (2006) The effect of viewing the moving limb and target object during the early phase of movement on the online control of grasping. Hum Mov Sci 25:349–371PubMedCrossRef Fukui T, Inui T (2006) The effect of viewing the moving limb and target object during the early phase of movement on the online control of grasping. Hum Mov Sci 25:349–371PubMedCrossRef
go back to reference Gonzalez CL, Ganel T, Goodale MA (2006) Hemispheric specialization for the visual control of action is independent of handedness. J Neurophysiol 95:3496–3501PubMedCrossRef Gonzalez CL, Ganel T, Goodale MA (2006) Hemispheric specialization for the visual control of action is independent of handedness. J Neurophysiol 95:3496–3501PubMedCrossRef
go back to reference Gonzalez CL, Ganel T, Whitwell RL, Morrissey B, Goodale MA (2008) Practice makes perfect, but only with the right hand: sensitivity to perceptual illusions with awkward grasps decreases with practice in the right but not the left hand. Neurophysiologia 46:624–631 Gonzalez CL, Ganel T, Whitwell RL, Morrissey B, Goodale MA (2008) Practice makes perfect, but only with the right hand: sensitivity to perceptual illusions with awkward grasps decreases with practice in the right but not the left hand. Neurophysiologia 46:624–631
go back to reference Holm S (1979) A simple sequentially rejective multiple test procedure. Scand J Stat 6:65–70 Holm S (1979) A simple sequentially rejective multiple test procedure. Scand J Stat 6:65–70
go back to reference Hopkins WD, Cantalupo C, Wesley MJ, Hostetter AB, Pilcher DL (2002) Grip morphology and hand use in chimpanzees (Pan troglodytes): evidence of a left hemisphere specialization in motor skill. J Exp Psychol Gen 131:412–423PubMedCentralPubMedCrossRef Hopkins WD, Cantalupo C, Wesley MJ, Hostetter AB, Pilcher DL (2002) Grip morphology and hand use in chimpanzees (Pan troglodytes): evidence of a left hemisphere specialization in motor skill. J Exp Psychol Gen 131:412–423PubMedCentralPubMedCrossRef
go back to reference Hopkins WD, Cantalupo C, Freeman H, Russell J, Kachin M, Nelson E (2005a) Chimpanzees are right-handed when recording bouts of hand use. Laterality 10:121–130PubMedCentralPubMed Hopkins WD, Cantalupo C, Freeman H, Russell J, Kachin M, Nelson E (2005a) Chimpanzees are right-handed when recording bouts of hand use. Laterality 10:121–130PubMedCentralPubMed
go back to reference Hopkins WD, Russell JL, Hook M, Braccini S, Schapiro SJ (2005b) Simple reaching is not so simple: association between hand use and grip preferences in captive chimpanzees. Int J Primatol 26:259–277PubMedCentralPubMedCrossRef Hopkins WD, Russell JL, Hook M, Braccini S, Schapiro SJ (2005b) Simple reaching is not so simple: association between hand use and grip preferences in captive chimpanzees. Int J Primatol 26:259–277PubMedCentralPubMedCrossRef
go back to reference Hopkins WD, Wesley MJ, Russell JL, Schapiro SJ (2006) Parental and perinatal factors influencing the development of handedness in captive chimpanzees. Dev Psychobiol 48:428–435PubMedCentralPubMedCrossRef Hopkins WD, Wesley MJ, Russell JL, Schapiro SJ (2006) Parental and perinatal factors influencing the development of handedness in captive chimpanzees. Dev Psychobiol 48:428–435PubMedCentralPubMedCrossRef
go back to reference Hopkins WD, Russell JL, Cantalupo C (2007) Neuroanatomical correlates of handedness for tool use in chimpanzees (Pan troglodytes): implication for theories on the evolution of language. Psychol Sci 18:971–977PubMedCentralPubMedCrossRef Hopkins WD, Russell JL, Cantalupo C (2007) Neuroanatomical correlates of handedness for tool use in chimpanzees (Pan troglodytes): implication for theories on the evolution of language. Psychol Sci 18:971–977PubMedCentralPubMedCrossRef
go back to reference Jakobson LS, Goodale MA (1991) Factors affecting higher-order movement planning: a kinematic analysis of human prehension. Exp Brain Res 86:199–208PubMedCrossRef Jakobson LS, Goodale MA (1991) Factors affecting higher-order movement planning: a kinematic analysis of human prehension. Exp Brain Res 86:199–208PubMedCrossRef
go back to reference Jeannerod M (1981) Intersegmental coordination during reaching at natural visual objects. In: Long J, Baddeley AD (eds) Attention and performance, IX. Erlbaum, Hillsdale, pp 153–168 Jeannerod M (1981) Intersegmental coordination during reaching at natural visual objects. In: Long J, Baddeley AD (eds) Attention and performance, IX. Erlbaum, Hillsdale, pp 153–168
go back to reference Kirk RE (1995) Experimental design: procedures for the behavioral sciences, 3rd edn. Brooks Cole, Pacific Grove Kirk RE (1995) Experimental design: procedures for the behavioral sciences, 3rd edn. Brooks Cole, Pacific Grove
go back to reference Mieschke PE, Elliott D, Helsen WF, Carson RG, Coull JA (2001) Manual asymmetries in the preparation and control of goal-directed movements. Brain Cogn 45:129–140PubMedCrossRef Mieschke PE, Elliott D, Helsen WF, Carson RG, Coull JA (2001) Manual asymmetries in the preparation and control of goal-directed movements. Brain Cogn 45:129–140PubMedCrossRef
go back to reference Mutha PK, Haaland KY, Sainburg RL (2012) The effects of brain lateralization on motor control and adaptation. J Motor Behav 44:455–469CrossRef Mutha PK, Haaland KY, Sainburg RL (2012) The effects of brain lateralization on motor control and adaptation. J Motor Behav 44:455–469CrossRef
go back to reference Oldfield RC (1971) The assessment and analysis of handedness: the Edinburgh inventory. Neuropsychologia 9:2028–2031CrossRef Oldfield RC (1971) The assessment and analysis of handedness: the Edinburgh inventory. Neuropsychologia 9:2028–2031CrossRef
go back to reference Perenin MT, Vighetto A (1988) Optic ataxia: a specific disruption in visuomotor mechanisms. I. Different aspects of the deficit in reaching for objects. Brain 111:643–674PubMedCrossRef Perenin MT, Vighetto A (1988) Optic ataxia: a specific disruption in visuomotor mechanisms. I. Different aspects of the deficit in reaching for objects. Brain 111:643–674PubMedCrossRef
go back to reference Rand MK, Lemay M, Squire LM, Shimansky YP, Stelmach GE (2007) Role of vision in grip aperture closure during reach-to-grasp movements. Exp Brain Res 181:447–460PubMedCentralPubMedCrossRef Rand MK, Lemay M, Squire LM, Shimansky YP, Stelmach GE (2007) Role of vision in grip aperture closure during reach-to-grasp movements. Exp Brain Res 181:447–460PubMedCentralPubMedCrossRef
go back to reference Song JH, Nakayama K (2007) Automatic adjustment of visuomotor readiness. J Vis 20:2–9CrossRef Song JH, Nakayama K (2007) Automatic adjustment of visuomotor readiness. J Vis 20:2–9CrossRef
go back to reference Wang J, Sainburg RL (2004) Interlimb transfer of novel inertial dynamics is asymmetrical. J Neurophysiol 92:349–360PubMedCrossRef Wang J, Sainburg RL (2004) Interlimb transfer of novel inertial dynamics is asymmetrical. J Neurophysiol 92:349–360PubMedCrossRef
go back to reference Wang J, Sainburg RL (2007) The dominant and nondominant arms are specialized for stabilizing different features of task performance. Exp Brain Res 178:565–570PubMedCrossRef Wang J, Sainburg RL (2007) The dominant and nondominant arms are specialized for stabilizing different features of task performance. Exp Brain Res 178:565–570PubMedCrossRef
go back to reference Whitwell RL, Goodale MA (2009) Updating the programming of a precision grip is a function of recent history of available feedback. Exp Brain Res 194:619–629PubMedCrossRef Whitwell RL, Goodale MA (2009) Updating the programming of a precision grip is a function of recent history of available feedback. Exp Brain Res 194:619–629PubMedCrossRef
go back to reference Whitwell RL, Lambert L, Goodale MA (2008) Grasping future events: explicit knowledge of the availability of visual feedback fails to reliably influence prehension. Exp Brain Res 188:603–611PubMedCrossRef Whitwell RL, Lambert L, Goodale MA (2008) Grasping future events: explicit knowledge of the availability of visual feedback fails to reliably influence prehension. Exp Brain Res 188:603–611PubMedCrossRef
Metadata
Title
Explicit knowledge about the availability of visual feedback affects grasping with the left but not the right hand
Authors
Rixin Tang
Robert L. Whitwell
Melvyn A. Goodale
Publication date
01-01-2014
Publisher
Springer Berlin Heidelberg
Published in
Experimental Brain Research / Issue 1/2014
Print ISSN: 0014-4819
Electronic ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-013-3740-9

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