Skip to main content
Top
Published in: Experimental Brain Research 5/2019

01-05-2019 | Research Article

Preparation to a quick whole-body action: control with referent body orientation and multi-muscle synergies

Authors: Alethéa Gomes Nardini, Sandra M. S. F. Freitas, Ali Falaki, Mark L. Latash

Published in: Experimental Brain Research | Issue 5/2019

Login to get access

Abstract

We examined the control of postural stability in preparation to a discrete, quick whole-body sway toward a target and back to the initial position. Several predictions were tested based on the theory of control with referent body orientation and the notion of multi-muscle synergies stabilizing center of pressure (COP) coordinate. Healthy, young adults performed fast, discrete whole-body motion forward-and-back and backward-and-back under visual feedback on the COP. We used two methods to assess COP stability, analysis of inter-trial variance and analysis of motor equivalence in the muscle activation space. Actions were always preceded by COP counter-movements. Backward COP shifts were faster, and the indices of multi-muscle synergies stabilizing COP were higher prior to those actions. Patterns of muscle activation at the motion onset supported the idea of a gradual shift in the referent body orientation. Prior to the backward movements, there was a trend toward higher muscle co-activation, compared to reciprocal activation. We found strong correlations between the sets of indices of motor equivalence and those of inter-trial variance. Overall, the results support the theory of control with referent coordinates and the idea of multi-muscle synergies stabilizing posture by confirming a number of non-trivial predictions based on these concepts. The findings favor using indices of motor equivalence in clinical studies to minimize the number of trials performed by each subject.
Literature
go back to reference Belenkiy VY, Gurfinkel VS, Pal’tsev YI (1967) Elements of control of voluntary movements. Biofizika 10:135–141 Belenkiy VY, Gurfinkel VS, Pal’tsev YI (1967) Elements of control of voluntary movements. Biofizika 10:135–141
go back to reference Bennett DJ, Hollerbach JM, Xu Y, Hunter IW (1992) Time-varying stiffness of human elbow joint during cyclic voluntary movement. Exp Brain Res 88:433–442CrossRefPubMed Bennett DJ, Hollerbach JM, Xu Y, Hunter IW (1992) Time-varying stiffness of human elbow joint during cyclic voluntary movement. Exp Brain Res 88:433–442CrossRefPubMed
go back to reference Bizzi E, Giszter SF, Loeb E, Mussa-Ivaldi FA, Saltiel P (1995) Modular organization of motor behavior in the frog’s spinal cord. Trends Neurosci 18:442–446CrossRefPubMed Bizzi E, Giszter SF, Loeb E, Mussa-Ivaldi FA, Saltiel P (1995) Modular organization of motor behavior in the frog’s spinal cord. Trends Neurosci 18:442–446CrossRefPubMed
go back to reference Breniere Y, Do MC (1986) When and how does steady state gait movement induced from upright posture begin? J Biomech 19:1035–1040CrossRefPubMed Breniere Y, Do MC (1986) When and how does steady state gait movement induced from upright posture begin? J Biomech 19:1035–1040CrossRefPubMed
go back to reference Corcos DM, Gottlieb GL, Agarwal GC (1989) Organizing principles for single joint movements. II. A speed-sensitive strategy. J Neurophysiol 62:358–368CrossRefPubMed Corcos DM, Gottlieb GL, Agarwal GC (1989) Organizing principles for single joint movements. II. A speed-sensitive strategy. J Neurophysiol 62:358–368CrossRefPubMed
go back to reference Corcos DM, Gottlieb GL, Latash ML, Almeida GL, Agarwal GC (1992) Electromechanical delay: an experimental artifact. J Electromyogr Kinesiol 2:59–68CrossRefPubMed Corcos DM, Gottlieb GL, Latash ML, Almeida GL, Agarwal GC (1992) Electromechanical delay: an experimental artifact. J Electromyogr Kinesiol 2:59–68CrossRefPubMed
go back to reference Crenna P, Frigo C (1991) A motor programme for the initiation of forward-oriented movements in humans. J Physiologie 437:635–653CrossRef Crenna P, Frigo C (1991) A motor programme for the initiation of forward-oriented movements in humans. J Physiologie 437:635–653CrossRef
go back to reference Criswell E, Cram JR (2011) Cram’s Introduction to Surface Electromyography. Jones and Bartlett, Sudbury Criswell E, Cram JR (2011) Cram’s Introduction to Surface Electromyography. Jones and Bartlett, Sudbury
go back to reference Cuadra C, Bartsch A, Tiemann P, Reschechtko S, Latash ML (2018) Multi-finger synergies and the muscular apparatus of the hand. Exp Brain Res 236:1383–1393CrossRefPubMedPubMedCentral Cuadra C, Bartsch A, Tiemann P, Reschechtko S, Latash ML (2018) Multi-finger synergies and the muscular apparatus of the hand. Exp Brain Res 236:1383–1393CrossRefPubMedPubMedCentral
go back to reference d’Avella A, Bizzi E (2005) Shared and specific muscle synergies in natural motor behaviors. Proc Nat Acad Sci USA 102:3076–3081CrossRefPubMed d’Avella A, Bizzi E (2005) Shared and specific muscle synergies in natural motor behaviors. Proc Nat Acad Sci USA 102:3076–3081CrossRefPubMed
go back to reference d’Avella A, Saltiel P, Bizzi E (2003) Combinations of muscle synergies in the construction of a natural motor behavior. Nat Neurosci 6:300–308CrossRefPubMed d’Avella A, Saltiel P, Bizzi E (2003) Combinations of muscle synergies in the construction of a natural motor behavior. Nat Neurosci 6:300–308CrossRefPubMed
go back to reference Danna-Dos-Santos A, Slomka K, Zatsiorsky VM, Latash ML (2007) Muscle modes and synergies during voluntary body sway. Exp Brain Res 179:533–550CrossRefPubMed Danna-Dos-Santos A, Slomka K, Zatsiorsky VM, Latash ML (2007) Muscle modes and synergies during voluntary body sway. Exp Brain Res 179:533–550CrossRefPubMed
go back to reference De Freitas PB, Freitas SMSF, Lewis MM, Huang X, Latash ML (2018) Stability of steady hand force production explored across spaces and methods of analysis. Exp Brain Res 236:1545–1562CrossRefPubMedPubMedCentral De Freitas PB, Freitas SMSF, Lewis MM, Huang X, Latash ML (2018) Stability of steady hand force production explored across spaces and methods of analysis. Exp Brain Res 236:1545–1562CrossRefPubMedPubMedCentral
go back to reference Diedrichsen J, Shadmehr R, Ivry RB (2010) The coordination of movement: optimal feedback control and beyond. Trends Cogn Sci 14:31–39CrossRefPubMed Diedrichsen J, Shadmehr R, Ivry RB (2010) The coordination of movement: optimal feedback control and beyond. Trends Cogn Sci 14:31–39CrossRefPubMed
go back to reference Duarte M, Freitas SMSF (2005) Speed-accuracy trade-off in voluntary postural movements. Mot Control 9:180–196CrossRef Duarte M, Freitas SMSF (2005) Speed-accuracy trade-off in voluntary postural movements. Mot Control 9:180–196CrossRef
go back to reference Falaki A, Huang X, Lewis MM, Latash ML (2016) Impaired synergic control of posture in Parkinson’s patients without postural instability. Gait Posture 44:209–216CrossRefPubMed Falaki A, Huang X, Lewis MM, Latash ML (2016) Impaired synergic control of posture in Parkinson’s patients without postural instability. Gait Posture 44:209–216CrossRefPubMed
go back to reference Falaki A, Huang X, Lewis MM, Latash ML (2017) Motor equivalence and structure of variance: Multi-muscle postural synergies in Parkinson’s disease. Exp Brain Res 235:2243–2258CrossRefPubMedPubMedCentral Falaki A, Huang X, Lewis MM, Latash ML (2017) Motor equivalence and structure of variance: Multi-muscle postural synergies in Parkinson’s disease. Exp Brain Res 235:2243–2258CrossRefPubMedPubMedCentral
go back to reference Falaki A, Jo HJ, Lewis MM, O’Connell B, De Jesus S, McInerney J, Huang X, Latash ML (2018) Systemic effects of deep brain stimulation on synergic control in Parkinson’s disease. Clin Neurophysiol 129:1320–1332CrossRefPubMedPubMedCentral Falaki A, Jo HJ, Lewis MM, O’Connell B, De Jesus S, McInerney J, Huang X, Latash ML (2018) Systemic effects of deep brain stimulation on synergic control in Parkinson’s disease. Clin Neurophysiol 129:1320–1332CrossRefPubMedPubMedCentral
go back to reference Feldman AG (1966) Functional tuning of the nervous system with control of movement or maintenance of a steady posture. II. Controllable parameters of the muscle. Biophysics 11:565–578 Feldman AG (1966) Functional tuning of the nervous system with control of movement or maintenance of a steady posture. II. Controllable parameters of the muscle. Biophysics 11:565–578
go back to reference Feldman AG (1986) Once more on the equilibrium-point hypothesis (λ-model) for motor control. J Mot Behav 18:17–54CrossRefPubMed Feldman AG (1986) Once more on the equilibrium-point hypothesis (λ-model) for motor control. J Mot Behav 18:17–54CrossRefPubMed
go back to reference Feldman AG (2015) Referent control of action and perception: Challenging conventional theories in behavioral science. Springer, New YorkCrossRef Feldman AG (2015) Referent control of action and perception: Challenging conventional theories in behavioral science. Springer, New YorkCrossRef
go back to reference Freitas SMSF, de Freitas PB, Lewis MM, Huang X, Latash ML (2019) Quantitative analysis of multi-element synergies stabilizing performance: Comparison of three methods with respect to their use in clinical studies. Exp Brain Res 237:453–465CrossRefPubMed Freitas SMSF, de Freitas PB, Lewis MM, Huang X, Latash ML (2019) Quantitative analysis of multi-element synergies stabilizing performance: Comparison of three methods with respect to their use in clinical studies. Exp Brain Res 237:453–465CrossRefPubMed
go back to reference Frysinger RC, Bourbonnais D, Kalaska JF, Smith AM (1984) Cerebellar cortical activity during antagonist cocontraction and reciprocal inhibition of forearm muscles. J Neurophysiol 51:32–49CrossRefPubMed Frysinger RC, Bourbonnais D, Kalaska JF, Smith AM (1984) Cerebellar cortical activity during antagonist cocontraction and reciprocal inhibition of forearm muscles. J Neurophysiol 51:32–49CrossRefPubMed
go back to reference Gottlieb GL, Corcos DM, Agarwal GC (1989) Strategies for the control of voluntary movements with one mechanical degree of freedom. Behav Brain Sci 12:189–250CrossRef Gottlieb GL, Corcos DM, Agarwal GC (1989) Strategies for the control of voluntary movements with one mechanical degree of freedom. Behav Brain Sci 12:189–250CrossRef
go back to reference Hafström A, Modig F, Magnusson M, Fransson PA (2014) Effectuation of adaptive stability and postural alignment strategies are decreased by alcohol intoxication. Hum Mov Sci 35:30–49CrossRefPubMed Hafström A, Modig F, Magnusson M, Fransson PA (2014) Effectuation of adaptive stability and postural alignment strategies are decreased by alcohol intoxication. Hum Mov Sci 35:30–49CrossRefPubMed
go back to reference Hair JF, Anderson RE, Tatham RL, Black WC (1995) Factor analysis. In: Borkowski D (ed) Multivariate data analysis. Prentice Hall, Englewood Cliffs, pp 364–404 Hair JF, Anderson RE, Tatham RL, Black WC (1995) Factor analysis. In: Borkowski D (ed) Multivariate data analysis. Prentice Hall, Englewood Cliffs, pp 364–404
go back to reference Harris CM, Wolpert DM (1998) Signal-dependent noise determines motor planning. Nature 394:780–784CrossRefPubMed Harris CM, Wolpert DM (1998) Signal-dependent noise determines motor planning. Nature 394:780–784CrossRefPubMed
go back to reference Hirokawa S, Solomonow M, Luo Z, Lu Y, D’Ambrosia R (1991) Muscular co-contraction and control of knee stability. J Electromyogr Kinesiol 1:199–208CrossRefPubMed Hirokawa S, Solomonow M, Luo Z, Lu Y, D’Ambrosia R (1991) Muscular co-contraction and control of knee stability. J Electromyogr Kinesiol 1:199–208CrossRefPubMed
go back to reference Hogan N, Sternad D (2007) On rhythmic and discrete movements: reflections, definitions and implications for motor control. Exp Brain Res 181:13–30CrossRefPubMed Hogan N, Sternad D (2007) On rhythmic and discrete movements: reflections, definitions and implications for motor control. Exp Brain Res 181:13–30CrossRefPubMed
go back to reference Ivanenko YP, Poppele RE, Lacquaniti F (2004) Five basic muscle activation patterns account for muscle activity during human locomotion. J Physiol 556:267–282CrossRefPubMedPubMedCentral Ivanenko YP, Poppele RE, Lacquaniti F (2004) Five basic muscle activation patterns account for muscle activity during human locomotion. J Physiol 556:267–282CrossRefPubMedPubMedCentral
go back to reference Kaiser HF (1960) The application of electronic computers to factor analysis. Educ Psychol Meas 20:141–151CrossRef Kaiser HF (1960) The application of electronic computers to factor analysis. Educ Psychol Meas 20:141–151CrossRef
go back to reference Kargo WJ, Ramakrishnan A, Hart CB, Rome LC, Giszter SF (2010) A simple experimentally based model using proprioceptive regulation of motor primitives captures adjusted trajectory formation in spinal frogs. J Neurophysiol 103:573–590CrossRefPubMed Kargo WJ, Ramakrishnan A, Hart CB, Rome LC, Giszter SF (2010) A simple experimentally based model using proprioceptive regulation of motor primitives captures adjusted trajectory formation in spinal frogs. J Neurophysiol 103:573–590CrossRefPubMed
go back to reference Kawato M (1999) Internal models for motor control and trajectory planning. Curr Opin Neurobiol 9:718–727CrossRefPubMed Kawato M (1999) Internal models for motor control and trajectory planning. Curr Opin Neurobiol 9:718–727CrossRefPubMed
go back to reference Klous M, Mikulic P, Latash ML (2011) Two aspects of feed-forward postural control: anticipatory postural adjustments and anticipatory synergy adjustments. J Neurophysiol 105:2275–2288CrossRefPubMedPubMedCentral Klous M, Mikulic P, Latash ML (2011) Two aspects of feed-forward postural control: anticipatory postural adjustments and anticipatory synergy adjustments. J Neurophysiol 105:2275–2288CrossRefPubMedPubMedCentral
go back to reference Krishnamoorthy V, Goodman SR, Latash ML, Zatsiorsky VM (2003a) Muscle synergies during shifts of the center of pressure by standing persons: Identification of muscle modes. Biol Cybern 89:152–161CrossRefPubMed Krishnamoorthy V, Goodman SR, Latash ML, Zatsiorsky VM (2003a) Muscle synergies during shifts of the center of pressure by standing persons: Identification of muscle modes. Biol Cybern 89:152–161CrossRefPubMed
go back to reference Krishnamoorthy V, Latash ML, Scholz JP, Zatsiorsky VM (2003b) Muscle synergies during shifts of the center of pressure by standing persons. Exp Brain Res 152:281–292CrossRefPubMed Krishnamoorthy V, Latash ML, Scholz JP, Zatsiorsky VM (2003b) Muscle synergies during shifts of the center of pressure by standing persons. Exp Brain Res 152:281–292CrossRefPubMed
go back to reference Krishnan V, Latash ML, Aruin AS (2012) Early and late components of feed-forward postural adjustments to predictable perturbations. Clin Neurophysiol 123:1016–1026CrossRefPubMed Krishnan V, Latash ML, Aruin AS (2012) Early and late components of feed-forward postural adjustments to predictable perturbations. Clin Neurophysiol 123:1016–1026CrossRefPubMed
go back to reference Latash ML (2010) Motor synergies and the equilibrium-point hypothesis. Mot Control 14:294–322CrossRef Latash ML (2010) Motor synergies and the equilibrium-point hypothesis. Mot Control 14:294–322CrossRef
go back to reference Latash ML (2017) Biological movement and laws of physics. Mot Control 21:327–344CrossRef Latash ML (2017) Biological movement and laws of physics. Mot Control 21:327–344CrossRef
go back to reference Latash ML, Gottlieb GL (1991) Reconstruction of elbow joint compliant characteristics during fast and slow voluntary movements. Neurosci 43:697–712CrossRef Latash ML, Gottlieb GL (1991) Reconstruction of elbow joint compliant characteristics during fast and slow voluntary movements. Neurosci 43:697–712CrossRef
go back to reference Latash ML, Huang X (2015) Neural control of movement stability: Lessons from studies of neurological patients. Neurosci 301:39–48CrossRef Latash ML, Huang X (2015) Neural control of movement stability: Lessons from studies of neurological patients. Neurosci 301:39–48CrossRef
go back to reference Latash ML, Scholz JP, Schöner G (2002) Motor control strategies revealed in the structure of motor variability. Exer Sport Sci Rev 30:26–31CrossRef Latash ML, Scholz JP, Schöner G (2002) Motor control strategies revealed in the structure of motor variability. Exer Sport Sci Rev 30:26–31CrossRef
go back to reference Latash ML, Scholz JP, Schöner G (2007) Toward a new theory of motor synergies. Mot Control 11:276–308CrossRef Latash ML, Scholz JP, Schöner G (2007) Toward a new theory of motor synergies. Mot Control 11:276–308CrossRef
go back to reference Leone FC, Nottingham RB, Nelson LS (1961) The folded normal distribution. Technometrics 3:543–550CrossRef Leone FC, Nottingham RB, Nelson LS (1961) The folded normal distribution. Technometrics 3:543–550CrossRef
go back to reference Massion J (1992) Movement, posture and equilibrium—interaction and coordination. Progs Neurobiol 38:35–56CrossRef Massion J (1992) Movement, posture and equilibrium—interaction and coordination. Progs Neurobiol 38:35–56CrossRef
go back to reference Mattos D, Latash ML, Park E, Kuhl J, Scholz JP (2011) Unpredictable elbow joint perturbation during reaching results in multijoint motor equivalence. J Neurophysiol 106:1424–1436CrossRefPubMedPubMedCentral Mattos D, Latash ML, Park E, Kuhl J, Scholz JP (2011) Unpredictable elbow joint perturbation during reaching results in multijoint motor equivalence. J Neurophysiol 106:1424–1436CrossRefPubMedPubMedCentral
go back to reference Mattos D, Kuhl J, Scholz JP, Latash ML (2013) Motor equivalence (ME) during reaching: Is ME observable at the muscle level? Mot Control 17:145–175CrossRef Mattos D, Kuhl J, Scholz JP, Latash ML (2013) Motor equivalence (ME) during reaching: Is ME observable at the muscle level? Mot Control 17:145–175CrossRef
go back to reference Milner TE, Cloutier C (1993) Compensation for mechanically unstable loading in voluntary wrist movement. Exp Brain Res 94:522–532CrossRefPubMed Milner TE, Cloutier C (1993) Compensation for mechanically unstable loading in voluntary wrist movement. Exp Brain Res 94:522–532CrossRefPubMed
go back to reference Mullick AA, Turpin NA, Hsu SC, Subramanian SK, Feldman AG, Levin MF (2018) Referent control of the orientation of posture and movement in the gravitational field. Exp Brain Res 236:381–398CrossRefPubMed Mullick AA, Turpin NA, Hsu SC, Subramanian SK, Feldman AG, Levin MF (2018) Referent control of the orientation of posture and movement in the gravitational field. Exp Brain Res 236:381–398CrossRefPubMed
go back to reference Nielsen JB, Kagamihara Y (1992) The regulation of disynaptic reciprocal Ia inhibition during co-contraction of antagonistic muscles in man. J Physiol 456:373–391CrossRefPubMedPubMedCentral Nielsen JB, Kagamihara Y (1992) The regulation of disynaptic reciprocal Ia inhibition during co-contraction of antagonistic muscles in man. J Physiol 456:373–391CrossRefPubMedPubMedCentral
go back to reference Olafsdottir H, Yoshida N, Zatsiorsky VM, Latash ML (2005) Anticipatory covariation of finger forces during self-paced and reaction time force production. Neurosci Letts 381:92–96CrossRef Olafsdottir H, Yoshida N, Zatsiorsky VM, Latash ML (2005) Anticipatory covariation of finger forces during self-paced and reaction time force production. Neurosci Letts 381:92–96CrossRef
go back to reference Olafsdottir H, Yoshida N, Zatsiorsky VM, Latash ML (2007) Elderly show decreased adjustments of motor synergies in preparation to action. Clin Biomech 22:44–51CrossRef Olafsdottir H, Yoshida N, Zatsiorsky VM, Latash ML (2007) Elderly show decreased adjustments of motor synergies in preparation to action. Clin Biomech 22:44–51CrossRef
go back to reference Park J, Lewis MM, Huang X, Latash ML (2014) Dopaminergic modulation of motor coordination in Parkinson’s disease. Parkinsonism Rel Disord 20:64–68CrossRef Park J, Lewis MM, Huang X, Latash ML (2014) Dopaminergic modulation of motor coordination in Parkinson’s disease. Parkinsonism Rel Disord 20:64–68CrossRef
go back to reference Piscitelli D, Falaki A, Solnik S, Latash ML (2017) Anticipatory postural adjustments and anticipatory synergy adjustments: preparing to a postural perturbation with predictable and unpredictable direction. Exp Brain Res 235:713–730CrossRefPubMed Piscitelli D, Falaki A, Solnik S, Latash ML (2017) Anticipatory postural adjustments and anticipatory synergy adjustments: preparing to a postural perturbation with predictable and unpredictable direction. Exp Brain Res 235:713–730CrossRefPubMed
go back to reference Rand MK, Van Gemmert AW, Hossain AB, Shimansky YP, Stelmach GE (2012) Control of aperture closure initiation during trunk-assisted reach-to-grasp movements. Exp Brain Res 219:293–304CrossRefPubMedPubMedCentral Rand MK, Van Gemmert AW, Hossain AB, Shimansky YP, Stelmach GE (2012) Control of aperture closure initiation during trunk-assisted reach-to-grasp movements. Exp Brain Res 219:293–304CrossRefPubMedPubMedCentral
go back to reference Robert T, Zatsiorsky VM, Latash ML (2008) Multi-muscle synergies in an unusual postural task: quick shear force production. Exp Brain Res 187:237–253CrossRefPubMedPubMedCentral Robert T, Zatsiorsky VM, Latash ML (2008) Multi-muscle synergies in an unusual postural task: quick shear force production. Exp Brain Res 187:237–253CrossRefPubMedPubMedCentral
go back to reference Scholz JP, Schöner G (1999) The uncontrolled manifold concept: Identifying control variables for a functional task. Exp Brain Res 126:289–306CrossRefPubMed Scholz JP, Schöner G (1999) The uncontrolled manifold concept: Identifying control variables for a functional task. Exp Brain Res 126:289–306CrossRefPubMed
go back to reference Scholz JP, Schöner G, Hsu WL, Jeka JJ, Horak F, Martin V (2007) Motor equivalent control of the center of mass in response to support surface perturbations. Exp Brain Res 180:163–179CrossRefPubMed Scholz JP, Schöner G, Hsu WL, Jeka JJ, Horak F, Martin V (2007) Motor equivalent control of the center of mass in response to support surface perturbations. Exp Brain Res 180:163–179CrossRefPubMed
go back to reference Shadmehr R, Wise SP (2005) The computational neurobiology of reaching and pointing. MIT Press, Cambridge Shadmehr R, Wise SP (2005) The computational neurobiology of reaching and pointing. MIT Press, Cambridge
go back to reference Shim JK, Olafsdottir H, Zatsiorsky VM, Latash ML (2005) The emergence and disappearance of multi-digit synergies during force production tasks. Exp Brain Res 164:260–270CrossRefPubMedPubMedCentral Shim JK, Olafsdottir H, Zatsiorsky VM, Latash ML (2005) The emergence and disappearance of multi-digit synergies during force production tasks. Exp Brain Res 164:260–270CrossRefPubMedPubMedCentral
go back to reference Slijper H, Latash ML (2000) The effects of instability and additional hand support on anticipatory postural adjustments in leg, trunk, and arm muscles during standing. Exp Brain Res 135:81–93CrossRefPubMed Slijper H, Latash ML (2000) The effects of instability and additional hand support on anticipatory postural adjustments in leg, trunk, and arm muscles during standing. Exp Brain Res 135:81–93CrossRefPubMed
go back to reference Slijper HP, Latash ML (2004) The effects of muscle vibration on anticipatory postural adjustments. Brain Res 1015:57–72CrossRefPubMed Slijper HP, Latash ML (2004) The effects of muscle vibration on anticipatory postural adjustments. Brain Res 1015:57–72CrossRefPubMed
go back to reference Tillman M, Ambike S (2018) Cue-induced changes in the stability of finger force-production tasks revealed by the uncontrolled manifold analysis. J Neurophysiol 119:21–32CrossRefPubMed Tillman M, Ambike S (2018) Cue-induced changes in the stability of finger force-production tasks revealed by the uncontrolled manifold analysis. J Neurophysiol 119:21–32CrossRefPubMed
go back to reference Ting LH, Macpherson JM (2005) A limited set of muscle synergies for force control during a postural task. J Neurophysiol 93:609–613CrossRefPubMed Ting LH, Macpherson JM (2005) A limited set of muscle synergies for force control during a postural task. J Neurophysiol 93:609–613CrossRefPubMed
go back to reference Wang Y, Zatsiorsky VM, Latash ML (2005) Muscle synergies involved in shifting center of pressure during making a first step. Exp Brain Res 167:196–210CrossRefPubMed Wang Y, Zatsiorsky VM, Latash ML (2005) Muscle synergies involved in shifting center of pressure during making a first step. Exp Brain Res 167:196–210CrossRefPubMed
go back to reference Wang Y, Asaka T, Zatsiorsky VM, Latash ML (2006) Muscle synergies during voluntary body sway: Combining across-trials and within-a-trial analyses. Exp Brain Res 174:679–693CrossRefPubMed Wang Y, Asaka T, Zatsiorsky VM, Latash ML (2006) Muscle synergies during voluntary body sway: Combining across-trials and within-a-trial analyses. Exp Brain Res 174:679–693CrossRefPubMed
go back to reference Winter DA, Prince F, Frank JS, Powell C, Zabjek KF (1996) Unified theory regarding A/P and M/L balance in quiet stance. J Neurophysiol 75:2334–2343CrossRefPubMed Winter DA, Prince F, Frank JS, Powell C, Zabjek KF (1996) Unified theory regarding A/P and M/L balance in quiet stance. J Neurophysiol 75:2334–2343CrossRefPubMed
go back to reference Wolpert DM, Miall RC, Kawato M (1998) Internal models in the cerebellum. Trends Cogn Sci 2:338–347CrossRefPubMed Wolpert DM, Miall RC, Kawato M (1998) Internal models in the cerebellum. Trends Cogn Sci 2:338–347CrossRefPubMed
go back to reference Zatsiorsky VM, Prilutsky BI (2012) Biomechanics of Skeletal Muscles. Human Kinetics, Urbana Zatsiorsky VM, Prilutsky BI (2012) Biomechanics of Skeletal Muscles. Human Kinetics, Urbana
Metadata
Title
Preparation to a quick whole-body action: control with referent body orientation and multi-muscle synergies
Authors
Alethéa Gomes Nardini
Sandra M. S. F. Freitas
Ali Falaki
Mark L. Latash
Publication date
01-05-2019
Publisher
Springer Berlin Heidelberg
Published in
Experimental Brain Research / Issue 5/2019
Print ISSN: 0014-4819
Electronic ISSN: 1432-1106
DOI
https://doi.org/10.1007/s00221-019-05510-5

Other articles of this Issue 5/2019

Experimental Brain Research 5/2019 Go to the issue