Full-text resources of PSJD and other databases are now available in the new Library of Science.
Visit https://bibliotekanauki.pl

PL EN


Preferences help
enabled [disable] Abstract
Number of results
2013 | 36 | 1 | 5-160

Article title

Assessment of Hand Function Through the Coordination of Contact Forces in Manipulation Tasks

Content

Title variants

Languages of publication

EN

Abstracts

EN
Exploration of force coordination has been one of the most often used approaches in studies of hand function. When holding and manipulating a hand-held object healthy individuals are typically able to highly coordinate the perpendicular (grip force; GF) with the tangential component of the contact force (load force; LF). The purpose of this review is to present the findings of our recent studies of GF-LF coordination. Regarding the mechanical factors affecting GF-LF coordination, our data suggest that both different hand segments and their particular skin areas could have markedly different friction properties. It also appears that the absolute, rather than relative safety margin (i.e., how much the actual GF exceeds the minimum value that prevents slipping) should be a variable of choice when assessing the applied magnitude of GF. The safety margin could also be lower in static than in free holding tasks. Regarding the involved neural factors, the data suggest that the increased frequency, rather than an increased range of a cyclic LF could have a prominent detrimental effect on the GF-LF coordination. Finally, it appears that the given instructions (e.g., 'to hold' vs. 'to pull') can prominently alter GF-LF coordination in otherwise identical manipulation tasks. Conversely, the effects of handedness could be relatively week showing only slight lagging of GF in the non-dominant, but not in the dominant hand. The presented findings reveal important aspects of hand function as seen through GF-LF coordination. Specifically, the use of specific hand areas for grasping, calculation of particular safety margins, the role of LF frequency (but not of LF range) and the effects of given instructions should be all taken into account when conducting future studies of manipulation tasks, standardizing their procedures and designing routine clinical tests of hand function.

Keywords

Publisher

Year

Volume

36

Issue

1

Pages

5-160

Physical description

Dates

published
1 - 03 - 2013
online
13 - 04 - 2013

Contributors

  • Department of Kinesiology and Applied Physiology, University of Delaware, Newark, USA
  • Biomechanics and Movement Science Graduate Program, University of Delaware, Newark, USA
author
  • Department of Kinesiology and Applied Physiology, University of Delaware, Newark, USA

References

  • Brown SH, Cooke JD. Amplitude- and instruction-dependent modulation of movement-related electromyogram activity in humans. J Physiol, 1981; 316: 97-107
  • Claudon L. Influence on grip of knife handle surface characteristics and wearing protective gloves. ApplErgon, 2006; 37: 729-735
  • Cole KJ, Rotella DL, Harper JG. Mechanisms for age-related changes of fingertip forces during precision gripping and lifting in adults. J Neurosci, 1999; 19: 3238-3247
  • Danion F, Descoins M, Bootsma RJ. 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, 2009; 193: 85-94[WoS]
  • Danion F, Sarlegna FR, Baud-Bovy G. Delayed Visual Feedback Affects Both Manual Tracking and Grip Force Control When Transporting a Handheld Object. J Neurophysiol, 2010; 104: 641-653[WoS]
  • de Freitas PB, Jaric S. Force coordination in static manipulation tasks performed using standard and nonstandard grasping techniques. Exp Brain Res, 2009; 194: 605-618[WoS]
  • de Freitas PB, Krishnan V, Jaric S. Force coordination in static manipulation tasks: effects of the change in direction and handedness. Exp Brain Res, 2007; 183: 487-497 de Freitas PB, Krishnan V, Jaric S. Force Coordination in Object Manipulation. J Hum Kinetics, 2008a; 20: 37-50[WoS]
  • de Freitas PB, Markovic G, Krishnan V, Jaric S. Force coordination in static manipulation: Discerning the contribution of muscle synergies and cutaneous afferents. Neurosci Lett, 2008b; 434: 234-239 de Freitas PB, Uygur M, Jaric S. Grip force adaptation in manipulation activities performed under different coating and grasping conditions. Neurosci Lett, 2009; 457: 16-20
  • Ferrand L, Jaric S. Force coordination in static bimanual manipulation: Effect of handedness. Motor Control, 2006; 10: 359-370
  • Flanagan JR, Wing AM. Modulation of grip force with load force during point-to-point arm movements. ExpBrain Res, 1993; 95: 131-143
  • Flanagan JR, Wing AM. The stability of precision grip forces during cyclic arm movements with a hand-held load. Exp Brain Res, 1995; 105: 455-464
  • Freitas PB, Krishnan V, Jaric S. Elaborate force coordination of precision grip could be generalized to bimanual grasping techniques. Neurosci Lett, 2007; 412: 179-184[WoS]
  • Jaric S, Collins JJ, Marwaha R, Russell E. Interlimb and within limb force coordination in static bimanual manipulation task. Exp Brain Res, 2006; 168 :88-97
  • Jaric S, Knight CA, Collins JJ, Marwaha R. Evaluation of a method for bimanual testing coordination of hand grip and load forces under isometric conditions. J Electromyogr Kines, 2005a; 15: 556-563
  • Jaric S, Russell EM, Collins JJ, Marwaha R. Coordination of hand grip and load forces in uni- and bidirectional static force production tasks. Neurosci Lett, 2005b; 381: 51-56
  • Jenmalm P, Goodwin AW, Johansson RS. Control of grasp stability when humans lift objects with different surface curvatures. J Neurophysiol, 1998; 79: 1643-1652
  • Jin X, Uygur M, Getchell N, Hall SJ, Jaric S. The effects of instruction and hand dominance on grip-to-load force coordination in manipulation tasks. Neurosci Lett, 2011; 504: 330-335[WoS]
  • Johansson RS, Westling G. 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; 56: 550-564
  • Johansson RS, Westling G. Programmed and triggered actions to rapid load changes during precision grip. Exp Brain Res, 1988; 71: 72-86
  • Krishnan V, de Freitas PB, Jaric S. Impaired Object Manipulation in Mildly Involved Individuals with Multiple Sclerosis. Motor Control, 2008; 12: 3-20
  • Krishnan V, Jaric S. Hand function in multiple sclerosis: Force coordination in manipulation tasks. ClinNeurophysiol, 2008; 119: 2274-2281[WoS]
  • Krishnan V, Jaric S. Effects of Task Complexity on Coordination of Inter-Limb and Within-Limb Forces in Static Bimanual Manipulation. Motor Control, 2010; 14: 528-544
  • Laroche C, Barr A, Dong H, Rempel D. Effect of dental tool surface texture and material on static friction with a wet gloved fingertip. J Biomech, 2007; 40: 697-701[WoS]
  • Latash ML, Jaric S. Instruction-dependent muscle activation patterns within a two-joint synergy: separating mechanics from neurophysiology. J Motor Behav, 1998; 30: 194-198
  • Mackenzie SJ, Getchell N, Modlesky CM, Miller F, Jaric S. Using Grasping Tasks to Evaluate Hand Force Coordination in Children With Hemiplegic Cerebral Palsy. Arch Phys Med Rehab, 2009; 90: 1439-1442[WoS]
  • Mrotek LA, Hart BA, Schot PK, Fennigkoh L. Grip responses to object load perturbations are stimulus and phase sensitive. Exp. Brain Res., 2004; 155: 413-420
  • Nowak DA, Hermsdorfer J. Grip force behavior during object manipulation in neurological disorders: Toward an objective evaluation of manual performance deficits. Movement Disorders, 2005; 20: 11-25[Crossref]
  • Nowak DA, Hermsdorfer J. Objective evaluation of manual performance deficits in neurological movement disorders. Brain Research Reviews, 2006; 51: 108-124
  • Sahaly R, Vandewalle H, Driss T, Monod H. Maximal voluntary force and rate of force development in humans - importance of instruction. Eur J Appl Physiol, 2001; 85: 345-350
  • Sainburg RL. Evidence for a dynamic-dominance hypothesis of handedness. Exp Brain Res, 2002; 142: 241-258
  • Savescu AV, Latash ML, Zatsiorsky VM. A technique to determine friction at the fingertips. J Appl Biomech, 2008; 24: 43-50
  • Seo NJ, Armstrong TJ, Chaffin DB, Ashton-Miller JA. Inward torque and high-friction handles can reduce required muscle efforts for torque generation. Hum Factors, 2008; 50: 37-48[WoS]
  • Serrien DJ, Wiesendanger M. A higher-order mechanism overrules the automatic grip-load force constraint during bimanual asymmetrical movements. Beha Brain Res, 2001; 118 :153-160
  • Sternad D, Dean WJ, Schaal S. Interaction of rhythmic and discrete pattern generators in single-joint movements. Hum Mov Sci, 2000; 19: 627-664
  • Uno Y, Kawato M, Suzuki R. Formation and Control of Optimal Trajectory in Human Multijoint Arm Movement - Minimum Torque-Change Model. Biol Cybern, 1989; 61: 89-101
  • Uygur M, de Freitas PB, Jaric S. Effects of varying the load force range and frequency on force coordination in static manipulation. Neurosci Lett, 2010a; 475: 115-119
  • Uygur M, de Freitas PB, Jaric S. Frictional properties of different hand skin areas and grasping techniques. Ergonomics, 2010b; 53: 812-817[WoS]
  • Uygur M, Jin X, Knezevic O, Jaric S. Two-dimensional static manipulation tasks: does force coordination depend on change of the tangential force direction? Exp Brain Res, 2012; 222: 365-375[WoS]
  • Westling G, Johansson RS. Factors influencing the force control during precision grip. Exp Brain Res, 1984; 53: 277-284
  • White O, McIntyre J, Augurelle AS, Thonnard JL. Do novel gravitational environments alter the gripforce/ load-force coupling at the fingertips? Exp Brain Res, 2005; 163: 324-334

Document Type

Publication order reference

Identifiers

YADDA identifier

bwmeta1.element.-psjd-doi-10_2478_hukin-2013-0001
JavaScript is turned off in your web browser. Turn it on to take full advantage of this site, then refresh the page.