Literature DB >> 26983620

Strategy of arm movement control is determined by minimization of neural effort for joint coordination.

Natalia Dounskaia1, Yury Shimansky2.   

Abstract

Optimality criteria underlying organization of arm movements are often validated by testing their ability to adequately predict hand trajectories. However, kinematic redundancy of the arm allows production of the same hand trajectory through different joint coordination patterns. We therefore consider movement optimality at the level of joint coordination patterns. A review of studies of multi-joint movement control suggests that a 'trailing' pattern of joint control is consistently observed during which a single ('leading') joint is rotated actively and interaction torque produced by this joint is the primary contributor to the motion of the other ('trailing') joints. A tendency to use the trailing pattern whenever the kinematic redundancy is sufficient and increased utilization of this pattern during skillful movements suggests optimality of the trailing pattern. The goal of this study is to determine the cost function minimization of which predicts the trailing pattern. We show that extensive experimental testing of many known cost functions cannot successfully explain optimality of the trailing pattern. We therefore propose a novel cost function that represents neural effort for joint coordination. That effort is quantified as the cost of neural information processing required for joint coordination. We show that a tendency to reduce this 'neurocomputational' cost predicts the trailing pattern and that the theoretically developed predictions fully agree with the experimental findings on control of multi-joint movements. Implications for future research of the suggested interpretation of the trailing joint control pattern and the theory of joint coordination underlying it are discussed.

Keywords:  Arm movements; Control of multi-joint movements; Information processing; Interaction torque; Multi-joint; Optimization criterion; Redundancy of degrees of freedom

Mesh:

Year:  2016        PMID: 26983620     DOI: 10.1007/s00221-016-4610-z

Source DB:  PubMed          Journal:  Exp Brain Res        ISSN: 0014-4819            Impact factor:   1.972


  89 in total

1.  Role of cocontraction in arm movement accuracy.

Authors:  Paul L Gribble; Lucy I Mullin; Nicholas Cothros; Andrew Mattar
Journal:  J Neurophysiol       Date:  2003-01-22       Impact factor: 2.714

2.  A note on the information-theoretic basis of Fitts' law.

Authors:  I S MacKenzie
Journal:  J Mot Behav       Date:  1989-09       Impact factor: 1.328

3.  General coordination of shoulder, elbow and wrist dynamics during multijoint arm movements.

Authors:  James C Galloway; Gail F Koshland
Journal:  Exp Brain Res       Date:  2001-12-06       Impact factor: 1.972

4.  Deliberate utilization of interaction torques brakes elbow extension in a fast throwing motion.

Authors:  Jon Hore; Derek B Debicki; Paul L Gribble; Sherry Watts
Journal:  Exp Brain Res       Date:  2011-04-06       Impact factor: 1.972

5.  Patterns of hypermetria and terminal cocontraction during point-to-point movements demonstrate independent action of trajectory and postural controllers.

Authors:  Robert A Scheidt; Claude Ghez; Supriya Asnani
Journal:  J Neurophysiol       Date:  2011-08-17       Impact factor: 2.714

6.  Energy-optimal controls in the mammalian neuromuscular system.

Authors:  H Hatze; J D Buys
Journal:  Biol Cybern       Date:  1977-07-08       Impact factor: 2.086

7.  The role of intrinsic factors in control of arm movement direction: implications from directional preferences.

Authors:  Natalia Dounskaia; Jacob A Goble; Wanyue Wang
Journal:  J Neurophysiol       Date:  2010-12-01       Impact factor: 2.714

8.  The coordination of arm movements: an experimentally confirmed mathematical model.

Authors:  T Flash; N Hogan
Journal:  J Neurosci       Date:  1985-07       Impact factor: 6.167

9.  The transition to reaching: mapping intention and intrinsic dynamics.

Authors:  E Thelen; D Corbetta; K Kamm; J P Spencer; K Schneider; R F Zernicke
Journal:  Child Dev       Date:  1993-08

10.  Load emphasizes muscle effort minimization during selection of arm movement direction.

Authors:  Wanyue Wang; Natalia Dounskaia
Journal:  J Neuroeng Rehabil       Date:  2012-10-04       Impact factor: 4.262

View more
  6 in total

1.  The role of intersegmental dynamics in coordination of the forelimb joints during unperturbed and perturbed skilled locomotion.

Authors:  Humza N Zubair; Erik E Stout; Natalia Dounskaia; Irina N Beloozerova
Journal:  J Neurophysiol       Date:  2018-07-11       Impact factor: 2.714

2.  Feedforward compensation for novel dynamics depends on force field orientation but is similar for the left and right arms.

Authors:  Eva-Maria Reuter; Ross Cunnington; Jason B Mattingley; Stephan Riek; Timothy J Carroll
Journal:  J Neurophysiol       Date:  2016-08-31       Impact factor: 2.714

3.  Influence of striking technique on maximum striking velocities-experimental and statistical investigation.

Authors:  Holger Muggenthaler; T X Trinh; S Heinke; C Rode; S Schenkl; M Hubig; G Mall
Journal:  Int J Legal Med       Date:  2018-03-15       Impact factor: 2.686

4.  Motor adaptations to local muscle pain during a bilateral cyclic task.

Authors:  Niels-Peter Brøchner Nielsen; Kylie Tucker; Sylvain Dorel; Arnaud Guével; François Hug
Journal:  Exp Brain Res       Date:  2016-11-12       Impact factor: 1.972

5.  Moving in on human motor cortex. Characterizing the relationship between body parts with non-rigid population response fields.

Authors:  Wouter Schellekens; Carlijn Bakker; Nick F Ramsey; Natalia Petridou
Journal:  PLoS Comput Biol       Date:  2022-04-04       Impact factor: 4.779

6.  Emergence of Extreme Paw Accelerations During Cat Paw Shaking: Interactions of Spinal Central Pattern Generator, Hindlimb Mechanics and Muscle Length-Depended Feedback.

Authors:  Boris I Prilutsky; Jessica Parker; Gennady S Cymbalyuk; Alexander N Klishko
Journal:  Front Integr Neurosci       Date:  2022-03-30
  6 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.