Benefits of Motor Imagery for Human Space Flight: A Brief Review of Current Knowledge and Future Applications.

mental practice mental processes microgravity motor performance weightlessness

Journal

Frontiers in physiology
ISSN: 1664-042X
Titre abrégé: Front Physiol
Pays: Switzerland
ID NLM: 101549006

Informations de publication

Date de publication:
2019
Historique:
received: 30 11 2018
accepted: 21 03 2019
entrez: 30 4 2019
pubmed: 30 4 2019
medline: 30 4 2019
Statut: epublish

Résumé

Motor imagery (MI) is arguably one of the most remarkable capacities of the human mind. There is now strong experimental evidence that MI contributes to substantial improvements in motor learning and performance. The therapeutic benefits of MI in promoting motor recovery among patients with motor impairments have also been reported. Despite promising theoretical and experimental findings, the utility of MI in adapting to unusual conditions, such as weightlessness during space flight, has received far less attention. In this review, we consider how, why, where, and when MI might be used by astronauts, and further evaluate the optimum MI content. Practically, we suggest that MI might be performed before, during, and after exposure to microgravity, respectively, to prepare for the rapid changes in gravitational forces after launch and to reduce the adverse effects of weightlessness exposition. Moreover, MI has potential role in facilitating re-adaptation when returning to Earth after long exposure to microgravity. Suggestions for further research include a focus on the multi-sensory aspects of MI, the requirement to use temporal characteristics as a measurement tool, and to account for the knowledge-base or metacognitive processes underlying optimal MI implementation.

Identifiants

pubmed: 31031635
doi: 10.3389/fphys.2019.00396
pmc: PMC6470189
doi:

Types de publication

Journal Article Review

Langues

eng

Pagination

396

Références

Exp Brain Res. 2000 Jan;130(1):2-26
pubmed: 10638437
J Appl Physiol (1985). 2000 Aug;89(2):823-39
pubmed: 10926670
Nature. 2001 Feb 22;409(6823):1115-8
pubmed: 11234026
Neuroimage. 2001 Jul;14(1 Pt 2):S103-9
pubmed: 11373140
Neuroimage. 2002 May;16(1):142-57
pubmed: 11969325
Behav Brain Res. 2002 Aug 21;134(1-2):209-15
pubmed: 12191807
Exp Brain Res. 2003 Feb;148(4):498-503
pubmed: 12582833
Aviat Space Environ Med. 1992 Nov;63(11):994-8
pubmed: 1445164
Neuroimage. 2003 Oct;20(2):1171-80
pubmed: 14568486
Neuropsychologia. 2004;42(7):944-56
pubmed: 14998709
Neurorehabil Neural Repair. 2004 Jun;18(2):66-75
pubmed: 15228801
Aviat Space Environ Med. 2004 Sep;75(9):795-9
pubmed: 15460632
J Mot Behav. 2005 Jan;37(1):10-20
pubmed: 15642689
J Neurophysiol. 1992 May;67(5):1114-23
pubmed: 1597701
Neuroscience. 2005;135(2):371-83
pubmed: 16125854
J Rehabil Med. 2007 Jan;39(1):5-13
pubmed: 17225031
J Vestib Res. 2007;17(5-6):279-87
pubmed: 18626138
Neurorehabil Neural Repair. 2009 Mar-Apr;23(3):237-45
pubmed: 18974420
Prog Brain Res. 2009;174:219-29
pubmed: 19477342
CMAJ. 2009 Jun 23;180(13):1317-23
pubmed: 19509005
J Neurol Phys Ther. 2009 Dec;33(4):195-202
pubmed: 20208464
Chronobiol Int. 2010 May;27(3):620-39
pubmed: 20524805
J Neurophysiol. 2010 Sep;104(3):1301-13
pubmed: 20554851
J Vestib Res. 2010;20(1):53-60
pubmed: 20555167
Neuroimage. 2011 Jan 15;54(2):1280-8
pubmed: 20828626
BMC Med. 2011 Jun 17;9:75
pubmed: 21682867
Front Psychol. 2011 Aug 19;2:194
pubmed: 21897826
Appl Psychophysiol Biofeedback. 2012 Mar;37(1):45-51
pubmed: 22127572
J Neurophysiol. 2012 May;107(9):2541-8
pubmed: 22298835
Neuroscience. 2012 Oct 11;222:69-74
pubmed: 22796070
Front Hum Neurosci. 2012 Sep 05;6:247
pubmed: 22973214
Res Q Exerc Sport. 2012 Sep;83(3):442-50
pubmed: 22978194
Neurosci Biobehav Rev. 2013 Jun;37(5):930-49
pubmed: 23583615
Front Hum Neurosci. 2013 Jul 30;7:415
pubmed: 23908623
Front Hum Neurosci. 2013 Sep 19;7:576
pubmed: 24065903
Front Hum Neurosci. 2013 Sep 26;7:561
pubmed: 24133427
Exp Psychol. 2014;61(3):180-6
pubmed: 24149241
Neuropsychologia. 2014 Mar;55:6-14
pubmed: 24388796
Psychol Res. 2015 May;79(3):489-99
pubmed: 24908074
J Neurophysiol. 2014 Dec 15;112(12):3219-26
pubmed: 25274345
Front Psychol. 2014 Oct 16;5:1155
pubmed: 25360126
Arch Phys Med Rehabil. 2015 Jul;96(7):1229-34
pubmed: 25731938
Brain Struct Funct. 2016 Jun;221(5):2873-6
pubmed: 25963710
Front Syst Neurosci. 2015 May 18;9:75
pubmed: 26042004
Neuroscience. 2015 Oct 1;305:146-56
pubmed: 26241339
Aerosp Med Hum Perform. 2015 Dec;86(12 Suppl):A14-A23
pubmed: 26630191
Front Hum Neurosci. 2016 Jun 28;10:315
pubmed: 27445755
Extrem Physiol Med. 2016 Aug 02;5:9
pubmed: 27489615
Behav Brain Res. 1989 Aug 1;34(1-2):35-42
pubmed: 2765170
Neuroscience. 2017 Jul 25;356:142-150
pubmed: 28499976
NPJ Microgravity. 2017 Jan 10;3:2
pubmed: 28649624
J Vestib Res. 2017;27(4):217-223
pubmed: 29081428
N Engl J Med. 2017 Nov 2;377(18):1746-1753
pubmed: 29091569
Front Physiol. 2017 Oct 20;8:821
pubmed: 29104544
Eur J Sport Sci. 2018 Mar;18(2):209-218
pubmed: 29249176
Neurosci Biobehav Rev. 2018 Nov;94:31-44
pubmed: 30098990
J Neurophysiol. 1995 Sep;74(3):1037-45
pubmed: 7500130
Neurosci Lett. 1998 Sep 4;253(2):103-6
pubmed: 9774160
Brain Res Brain Res Rev. 1998 Nov;28(1-2):83-91
pubmed: 9795153

Auteurs

Aymeric Guillot (A)

Inter-University Laboratory of Human Movement Biology-EA 7424, University of Lyon, University Claude Bernard Lyon 1, Villeurbanne, France.
Institut Universitaire de France, Paris, France.

Ursula Debarnot (U)

Inter-University Laboratory of Human Movement Biology-EA 7424, University of Lyon, University Claude Bernard Lyon 1, Villeurbanne, France.

Classifications MeSH