Skip to main content
Top
Published in: Experimental Brain Research 4/2012

01-10-2012 | Research Article

Two-dimensional static manipulation tasks: does force coordination depend on change of the tangential force direction?

Authors: Mehmet Uygur, Xin Jin, Olivera Knezevic, Slobodan Jaric

Published in: Experimental Brain Research | Issue 4/2012

Login to get access

Abstract

Coordination of the grip force (GF) with a tangential force (TF, often referred to as load force) exerted along a certain line in space (i.e., one-dimensional tasks) during object manipulation has proved both to be high and based on feed-forward neural control mechanisms. However, GF–TF coordination deteriorates when the TF of one-dimensional task consecutively switches its direction (bidirectional task). In the present study, we aimed to explore GF–TF coordination in the generally neglected multi-dimensional manipulations. We hypothesized that the coordination would depend on the number of unidirectional and bidirectional orthogonal components of a two-dimensional TF exertion. Fourteen subjects traced various circular TF patterns and their orthogonal diameters shown on a computer screen by exerting a static TF. As expected, the unidirectional tasks revealed higher GF–TF coordination than the bidirectional ones (e.g., higher GF–TF correlations and GF gains, and lower GF/TF ratio). Regarding the circular tasks, most of the data were in line with the hypothesis revealing higher coordination associated with higher number of unidirectional components. Of particular importance could be that the circular tasks also revealed prominent time lags of GF with respect to TF, suggesting involvement of feedback mechanisms. We conclude that the force coordination in bidirectional static manipulations could be affected by changes in TF direction along either of its orthogonal components. The time lags observed from the circular tasks could be a consequence of the activity of sensory afferents, rather than of the visual feedback provided or the task complexity.
Literature
go back to reference Blakemore SJ, Goodbody SJ, Wolpert DM (1998) Predicting the consequences of our own actions: the role of sensorimotor context estimation. J Neurosci 18:7511–7518PubMed Blakemore SJ, Goodbody SJ, Wolpert DM (1998) Predicting the consequences of our own actions: the role of sensorimotor context estimation. J Neurosci 18:7511–7518PubMed
go back to reference Cohen J (1988) Statistical power analysis for the behavioral sciences, 2nd edn. Lawrance Erlbaum, New Jersey Cohen J (1988) Statistical power analysis for the behavioral sciences, 2nd edn. Lawrance Erlbaum, New Jersey
go back to reference Danion F, Descoins M, Bootsma RJ (2009) When the fingers need to act faster than the arm: coordination between grip force and load force during oscillation of a hand-held object. Exp Brain Res 193:85–94. doi:10.1007/s00221-008-1597-0 PubMedCrossRef Danion F, Descoins M, Bootsma RJ (2009) When the fingers need to act faster than the arm: coordination between grip force and load force during oscillation of a hand-held object. Exp Brain Res 193:85–94. doi:10.​1007/​s00221-008-1597-0 PubMedCrossRef
go back to reference de Freitas PB, Jaric S (2009) Force coordination in static manipulation tasks performed using standard and non-standard grasping techniques. Exp Brain Res 194:605–618PubMedCrossRef de Freitas PB, Jaric S (2009) Force coordination in static manipulation tasks performed using standard and non-standard grasping techniques. Exp Brain Res 194:605–618PubMedCrossRef
go back to reference de Freitas PB, Krishnan V, Jaric S (2008a) Force coordination in object manipulation. J Hum Kinet 20:37–51CrossRef de Freitas PB, Krishnan V, Jaric S (2008a) Force coordination in object manipulation. J Hum Kinet 20:37–51CrossRef
go back to reference Flanagan JR, Wing AM (1993) Modulation of grip force with load force during point-to-point arm movements. Exp Brain Res 95:131–143PubMedCrossRef Flanagan JR, Wing AM (1993) Modulation of grip force with load force during point-to-point arm movements. Exp Brain Res 95:131–143PubMedCrossRef
go back to reference Flanagan JR, Wing AM (1995) The stability of precision grip forces during cyclic arm movements with a hand-held load. Exp Brain Res 105:455–464PubMed Flanagan JR, Wing AM (1995) The stability of precision grip forces during cyclic arm movements with a hand-held load. Exp Brain Res 105:455–464PubMed
go back to reference Jaric S, Russell EM, Collins JJ, Marwaha R (2005) Coordination of hand grip and load forces in uni- and bidirectional static force production tasks. Neurosci Lett 381:51–56PubMedCrossRef Jaric S, Russell EM, Collins JJ, Marwaha R (2005) Coordination of hand grip and load forces in uni- and bidirectional static force production tasks. Neurosci Lett 381:51–56PubMedCrossRef
go back to reference Jaric S, Collins JJ, Marwaha R, Russell E (2006) Interlimb and within limb force coordination in static bimanual manipulation task. Exp Brain Res 168:88–97PubMedCrossRef Jaric S, Collins JJ, Marwaha R, Russell E (2006) Interlimb and within limb force coordination in static bimanual manipulation task. Exp Brain Res 168:88–97PubMedCrossRef
go back to reference Johansson RS, Birznieks I (2004) First spikes in ensembles of human tactile afferents code complex spatial fingertip events. Nat Neurosci 7:170–177PubMedCrossRef Johansson RS, Birznieks I (2004) First spikes in ensembles of human tactile afferents code complex spatial fingertip events. Nat Neurosci 7:170–177PubMedCrossRef
go back to reference Johansson RS, Westling G (1984) Roles of glabrous skin receptors and sensorimotor memory in automatic control of precision grip when lifting rougher or more slippery objects. Exp Brain Res 56:550–564PubMedCrossRef Johansson RS, Westling G (1984) Roles of glabrous skin receptors and sensorimotor memory in automatic control of precision grip when lifting rougher or more slippery objects. Exp Brain Res 56:550–564PubMedCrossRef
go back to reference Johansson RS, Westling G (1988) Programmed and triggered actions to rapid load changes during precision grip. Exp Brain Res 71:72–86PubMed Johansson RS, Westling G (1988) Programmed and triggered actions to rapid load changes during precision grip. Exp Brain Res 71:72–86PubMed
go back to reference Johansson RS, Riso R, Hager C, Backstrom L (1992) Somatosensory control of precision grip during unpredictable pulling loads. I. Changes in load force amplitude. Exp Brain Res 89:181–191PubMedCrossRef Johansson RS, Riso R, Hager C, Backstrom L (1992) Somatosensory control of precision grip during unpredictable pulling loads. I. Changes in load force amplitude. Exp Brain Res 89:181–191PubMedCrossRef
go back to reference Krishnan V, Jaric S (2010) Effects of task complexity on coordination of inter-limb and within-limb forces in static bimanual manipulation. Mot Control 14:528–544 Krishnan V, Jaric S (2010) Effects of task complexity on coordination of inter-limb and within-limb forces in static bimanual manipulation. Mot Control 14:528–544
go back to reference Krishnan V, de Freitas PB, Jaric S (2008) Impaired object manipulation in mildly involved individuals with multiple sclerosis. Mot Control 12:3–20 Krishnan V, de Freitas PB, Jaric S (2008) Impaired object manipulation in mildly involved individuals with multiple sclerosis. Mot Control 12:3–20
go back to reference Marwaha R, Hall SJ, Knight CA, Jaric S (2006) Load and grip force coordination in static bimanual manipulation tasks in multiple sclerosis. Mot Control 10:160–177 Marwaha R, Hall SJ, Knight CA, Jaric S (2006) Load and grip force coordination in static bimanual manipulation tasks in multiple sclerosis. Mot Control 10:160–177
go back to reference Nowak DA, Hermsdorfer J (2005) Grip force behavior during object manipulation in neurological disorders: toward an objective evaluation of manual performance deficits. Mov Disord 20:11–25PubMedCrossRef Nowak DA, Hermsdorfer J (2005) Grip force behavior during object manipulation in neurological disorders: toward an objective evaluation of manual performance deficits. Mov Disord 20:11–25PubMedCrossRef
go back to reference Nowak DA, Glasauer S, Hermsdorfer J (2004) How predictive is grip force control in the complete absence of somatosensory feedback? Brain 127:182–192PubMedCrossRef Nowak DA, Glasauer S, Hermsdorfer J (2004) How predictive is grip force control in the complete absence of somatosensory feedback? Brain 127:182–192PubMedCrossRef
go back to reference Serrien DJ, Wiesendanger M (2001) Regulation of grasping forces during bimanual in-phase and anti-phase coordination. Neuropsychologia 39:1379–1384PubMedCrossRef Serrien DJ, Wiesendanger M (2001) Regulation of grasping forces during bimanual in-phase and anti-phase coordination. Neuropsychologia 39:1379–1384PubMedCrossRef
go back to reference Slota GP, Latash ML, Zatsiorsky VM (2011) Grip forces during object manipulation: experiment, mathematical model, and validation. Exp Brain Res 213:125–139PubMedCrossRef Slota GP, Latash ML, Zatsiorsky VM (2011) Grip forces during object manipulation: experiment, mathematical model, and validation. Exp Brain Res 213:125–139PubMedCrossRef
go back to reference Uygur M, de Freitas PB, Jaric S (2010) Effects of varying the load force range and frequency on force coordination in static manipulation. Neurosci Lett 475:115–119PubMedCrossRef Uygur M, de Freitas PB, Jaric S (2010) Effects of varying the load force range and frequency on force coordination in static manipulation. Neurosci Lett 475:115–119PubMedCrossRef
go back to reference Zatsiorsky VM, Gao F, Latash ML (2005) Motor control goes beyond physics: differential effects of gravity and inertia on finger forces during manipulation of hand-held objects. Exp Brain Res 162:300–308PubMedCrossRef Zatsiorsky VM, Gao F, Latash ML (2005) Motor control goes beyond physics: differential effects of gravity and inertia on finger forces during manipulation of hand-held objects. Exp Brain Res 162:300–308PubMedCrossRef
Metadata
Title
Two-dimensional static manipulation tasks: does force coordination depend on change of the tangential force direction?
Authors
Mehmet Uygur
Xin Jin
Olivera Knezevic
Slobodan Jaric
Publication date
01-10-2012
Publisher
Springer-Verlag
Published in
Experimental Brain Research / Issue 4/2012
Print ISSN: 0014-4819
Electronic ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-012-3221-6

Other articles of this Issue 4/2012

Experimental Brain Research 4/2012 Go to the issue