Abolins V, Latash ML (2021) The nature of finger enslaving: new results and their implications. Mot Control 25:680–703
Abolins V, Stremoukhov A, Walter C, Latash ML (2020) On the origin of finger enslaving: control with referent coordinates and effects of visual feedback. J Neurophysiol 124:1625–1636
Article PubMed PubMed Central Google Scholar
Ambike S, Mattos D, Zatsiorsky VM, Latash ML (2016) Synergies in the space of control variables within the equilibrium-point hypothesis. Neuroscience 315:150–161
Article CAS PubMed Google Scholar
Belenkiy VY, Gurfinkel VS, Paltsev YI (1967) Elements of control of voluntary movements. Biofizika 10:135–141
Benamati A, Ricotta JM, De SD, Latash ML (2024) Three levels of neural control contributing to force-stabilizing synergies in multi-finger tasks. Neuroscience 551:262–275
Article CAS PubMed Google Scholar
Bernstein NA (1947) On the construction of movements. Medgiz: Moscow (in Russian). English translation is in: Latash ML (Ed.) (2020) Bernstein’s Construction of Movements. Routledge: Abingdon, UK.
Birren JE, Fisher LM (1995) Aging and speed of behavior: possible consequences for psychological functioning. Annu Rev Psychol 46:329–353
Article CAS PubMed Google Scholar
Cavallari P, Bolzoni F, Bruttini C, Esposti R (2016) The organization and control of intra-limb anticipatory postural adjustments and their role in movement performance. Front Hum Neurosci 10:525
Article PubMed PubMed Central Google Scholar
Danion F, Schöner G, Latash ML, Li S, Scholz JP, Zatsiorsky VM (2003) A force mode hypothesis for finger interaction during multi-finger force production tasks. Biol Cybern 88:91–98
Falaki A, Huang X, Lewis MM, Latash ML (2016) Impaired synergic control of posture in Parkinson’s patients without postural instability. Gait Posture 44:209–215
Falaki A, Huang X, Lewis MM, Latash ML (2017) Dopaminergic modulation of multi-muscle synergies in postural tasks performed by patients with Parkinson’s disease. J Electromyogr Kinesiol 33:20–26
Article PubMed PubMed Central Google Scholar
Feldman AG (2015) Referent control of action and perception: Challenging conventional theories in behavioral science. Springer, NY
Flanagan JR, Wing AM (1993) Modulation of grasp force with load force during point-to-point arm movements. Exp Brain Res 95:131–143
Article CAS PubMed Google Scholar
Flanagan JR, Wing AM (1995) The stability of precision grasp forces during cyclic arm movements with a hand-held load. Exp Brain Res 105:455–464
Freitas SM, Scholz JP, Stehman AJ (2007) Effect of motor planning on use of motor abundance. Neurosci Lett 417:66–71
Article PubMed PubMed Central Google Scholar
Friedman J, Skm V, Zatsiorsky VM, Latash ML (2009) The sources of two components of variance: an example of multifinger cyclic force production tasks at different frequencies. Exp Brain Res 196:263–277
Article PubMed PubMed Central Google Scholar
Gaveau V, Pisella L, Priot AE, Fukui T, Rossetti Y, Pélisson D, Prablanc C (2014) Automatic online control of motor adjustments in reaching and grasping. Neuropsychologia 55:25–40
Gelfand IM, Latash ML (1998) On the problem of adequate language in movement science. Mot Control 2:306–313
Goodman SR, Shim JK, Zatsiorsky VM, Latash ML (2005) Motor variability within a multi-effector system: experimental and analytical studies of multi-finger production of quick force pulses. Exp Brain Res 163:75–85
Article PubMed PubMed Central Google Scholar
Jo HJ, Park J, Lewis MM, Huang X, Latash ML (2015) Prehension synergies and hand function in early-stage Parkinson’s disease. Exp Brain Res 233:425–440
Jo HJ, Maenza C, Good DC, Huang X, Park J, Sainburg RL, Latash ML (2016) Effects of unilateral stroke on multi-finger synergies and their feed-forward adjustments. Neuroscience 319:194–205
Article CAS PubMed Google Scholar
Jo HJ, Lucassen E, Huang X, Latash ML (2017) Changes in multi-digit synergies and their feed-forward adjustments in multiple sclerosis. J Mot Behav 49:218–228
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 56:550–564
Article CAS PubMed Google Scholar
Kawato M (1999) Internal models for motor control and trajectory planning. Curr Opin Neurobiol 9:718–727
Article CAS PubMed Google Scholar
Kim NG, Turvey MT, Carello C (1993) Optical information about the severity of upcoming contacts. J Exp Psychol Hum Percept Perform 19:179–193
Article CAS PubMed Google Scholar
Klous M, Mikulic P, Latash ML (2011) Two aspects of feed-forward postural control: anticipatory postural adjustments and anticipatory synergy adjustments. J Neurophysiol 105:2275–2288
Article PubMed PubMed Central Google Scholar
Krishnan V, Aruin AS, Latash ML (2011) Two stages and three components of postural preparation to action. Exp Brain Res 212:47–63
Article PubMed PubMed Central Google Scholar
Kulkarni A, Cui C, Rietdyk S, Ambike S (2023) Humans prioritize walking efficiency or walking stability based on environmental risk. PLoS ONE 18(4):e0284278
Article CAS PubMed PubMed Central Google Scholar
Latash ML (2012) The bliss (not the problem) of motor abundance (not redundancy). Exp Brain Res 217:1–5
Article PubMed PubMed Central Google Scholar
Latash ML (ed) (2020) Bernstein’s construction of movements. Routledge, Abingdon, UK
Latash ML (2021a) Laws of nature that define biological action and perception. Phys Life Rev 36:47–67
Latash ML (2021b) One more time about motor (and non-motor) synergies. Exp Brain Res 239:2951–2967
Latash ML (2023) Optimality, stability, and agility of human movement: new optimality criterion and trade-offs. Mot Control 27:123–159
Latash ML, Huang X (2015) Neural control of movement stability: lessons from studies of neurological patients. Neuroscience 301:39–48
Article CAS PubMed Google Scholar
Latash ML, Zatsiorsky VM (1993) Joint stiffness: Myth or reality? Hum Mov Sci 12:653–692
Latash ML, Scholz JF, Danion F, Schöner G (2002) Finger coordination during discrete and oscillatory force production tasks. Exp Brain Res 146:412–432
Latash ML, Shim JK, Smilga AV, Zatsiorsky V (2005) A central back-coupling hypothesis on the organization of motor synergies: a physical metaphor and a neural model. Biol Cybern 92:186–191
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