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Research Article

Relationship between the vividness of motor imagery and physical function in patients with subacute hemiplegic stroke: a cross-sectional preliminary study

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Pages 121-126 | Received 04 Aug 2021, Accepted 26 Mar 2022, Published online: 04 Apr 2022

References

  • Decety J. The neurophysiological basis of motor imagery. Behav Brain Res. 1996;77(1–2):45–52. doi:10.1016/0166-4328(95)00225-1
  • Jeannerod M. The representing brain: neural correlates of motor intention and imagery. Behav Brain Sci. 1994;17(2):187–202. doi:10.1017/S0140525X00034026
  • Hétu S, Grégoire M, Saimpont A, Coll MP, Eugène F, Michon PE, Jackson PL. The neural network of motor imagery: an ALE meta-analysis. Neurosci Biobehav Rev. 2013;37(5):930–49. doi:10.1016/j.neubiorev.2013.03.017
  • Hardwick RM, Caspers S, Eickhoff SB, Swinnen SP. Neural correlates of action: comparing meta-analyses of imagery, observation, and execution. Neurosci Biobehav Rev. 2018;94:31–44. 10.1016/j.neubiorev.2018.08.003.
  • Guillot A, Collet C, Nguyen VA, Malouin F, Richards C, Doyon J. Brain activity during visual versus kinesthetic imagery: an fMRI study. Hum Brain Mapp. 2009;30(7):2157–72. doi:10.1002/hbm.20658
  • Sparing R, Mottaghy FM, Ganis G, Thompson WL, Töpper R, Kosslyn SM, Pascual-Leone A. Visual cortex excitability increases during visual mental imagery—a TMS study in healthy human subjects. Brain Res. 2002;938(1–2):92–97. doi:10.1016/s0006-8993(02)02478-2
  • Decety J, Jeannerod M, Prablanc C. The timing of mentally represented actions. Behav Brain Res. 1989;34(1–2):35–42. doi:10.1016/s0166-4328(89)80088-9
  • Hall C, Pongrac J, Buckholz E. The measurement of imagery ability. Hum Mov Sci. 1985;4(2):107–18. doi:10.1016/0167-9457(85)90006-5
  • Kolbaşı EN, Ersoz Huseyinsinoglu B, Erdoğan HA, Çabalar M, Bulut N, Yayla V. What are the determinants of explicit and implicit motor imagery ability in stroke patients?: a controlled study. Somatosens Mot Res. 2020;37(2):84–91. doi:10.1080/08990220.2020.1741344
  • Malouin F, Richards CL, Jackson PL, Lafleur MF, Durand A, Doyon J. The kinesthetic and visual imagery questionnaire (KVIQ) for assessing motor imagery in persons with physical disabilities: a reliability and construct validity study. J Neurol Phys Ther. 2007;31(1):20–29. doi:10.1097/01.npt.0000260567.24122.64
  • Malouin F, Richards CL, Durand A, Doyon J. Clinical assessment of motor imagery after stroke. Neurorehabil Neural Repair. 2008;22(4):330–40. doi:10.1177/1545968307313499
  • Sakurai R, Fujiwara Y, Yasunaga M, Suzuki H, Sakuma N, Imanaka K, Montero-Odasso M. Older adults with fear of falling show deficits in motor imagery of gait. J Nutr Health Aging. 2017;21(6):721–26. doi:10.1007/s12603-016-0811-1
  • Sakurai R, Montero-Odasso M, Suzuki H, Ogawa S, Fujiwara Y, Sakurai R, Montero-Odasso M, Suzuki H, Ogawa S, Fujiwara Y, et al. Motor imagery deficits in high-functioning older adults and its impact on fear of falling and falls. J Gerontol A Biol Sci Med Sci. 2021;76(9):e228–e234. doi:10.1093/gerona/glab073
  • Oostra KM, Vereecke A, Jones K, Vanderstraeten G, Vingerhoets G. Motor imagery ability in patients with traumatic brain injury. Arch Phys Med Rehabil. 2012;93(5):828–33. doi:10.1016/j.apmr.2011.11.018
  • Nakano H, Kodama T, Ukai K, Kawahara S, Horikawa S, Murata S. Reliability and validity of the Japanese version of the kinesthetic and visual imagery questionnaire (KVIQ). Brain Sci. 2018;8(5):79. doi:10.3390/brainsci8050079
  • Brunnstrom S. Motor testing procedures in hemiplegia: based on sequential recovery stages. Phys Ther. 1966;46(4):357–75. doi:10.1093/ptj/46.4.357
  • Liu M, Chino N, Tuji T, Masakado Y, Hase K, Kimura A. Psychometric properties of the stroke impairment assessment set (SIAS). Neurorehabil Neural Repair. 2002;16(4):339–51. doi:10.1177/0888439002239279
  • Green J, Forster A, Young J. Reliability of gait speed measured by a timed walking test in patients one year after stroke. Clin Rehabil. 2002;16(3):306–14. doi:10.1191/0269215502cr495oa
  • Granger CV. Guide for use of uniform data set for medical rehabilitation. Buffalo, NY: Buffalo General Hospital; 1986.
  • Kidd D, Stewart G, Baldry J, Johnson J, Rossiter D, Petruckevitch A, Thompson AJ. The functional Independence measure: a comparative validity and reliability study. Disabil Rehabil. 1995;17(1):10–14. doi:10.3109/09638289509166622
  • Guillot A, Collet C, Dittmar A. Relationship between visual and kinesthetic imagery, field dependence-Independence, and complex motor skills. J Psychophysiol. 2004;18(4):190–98. doi:10.1027/0269-8803.18.4.190
  • Morioka S, Osumi M, Nishi Y, Ishigaki T, Ishibashi R, Sakauchi T, Takamura Y, Nobusako S. Motor-imagery ability and function of hemiplegic upper limb in stroke patients. Ann. Clin. Transl. Neurol. 2019;6(3):596–604. doi:10.1002/acn3.739
  • Toriyama H, Ushiba J, Ushiyama J. Subjective vividness of kinesthetic motor imagery is associated with the similarity in magnitude of sensorimotor event-related desynchronization between motor execution and motor imagery. Front Hum Neurosci. 2018;12:295. 10.3389/fnhum.2018.00295.
  • Stinear CM, Byblow WD, Steyvers M, Levin O, Swinnen SP. Kinesthetic, but not visual, motor imagery modulates corticomotor excitability. Exp Brain Res. 2006;168(1–2):157–64. doi:10.1007/s00221-005-0078-y
  • Takemi M, Maeda T, Masakado Y, Siebner HR, Ushiba J. Muscle-selective disinhibition of corticomotor representations using a motor imagery-based brain–computer interface. Neuroimage. 2018;183:597–605. 10.1016/j.neuroimage.2018.08.070.
  • Choo YJ, Kim JH, Chang MC. The prediction of need of using ankle-foot orthoses in stroke patients based on findings of a transcranial magnetic stimulation study. J Integr Neurosci. 2021;20(1):119–23. doi:10.31083/j.jin.2021.01.107
  • Lim H, Madhavan S. Differential corticomotor mechanisms of ankle motor control in post stroke individuals with and without motor evoked potentials. Brain Res. 2020;1739:146833. 10.1016/j.brainres.2020.146833.
  • Sakai K, Kawasaki T, Ikeda Y, Tominaga K, Kurihara K. Relationship between motor estimation error and physical function in patients with Parkinson’s disease. Med (Basel). 2020;7(8):43. doi:10.3390/medicines7080043
  • Kawasaki T, Mikami K, Kamo T, Aoki R, Ishiguro R, Nakamura H, Tozawa R, Asada N, Hiiragi Y, Yamada Y, et al. Correction: motor planning error in Parkinson’s disease and its clinical correlates. PLOS ONE. 2020;15(1):e0228698. doi:10.1371/journal.pone.0228698.
  • Kawasaki T, Tozawa R. Motor function relating to the accuracy of self-overestimation error in community-dwelling older adults. Front Neurol. 2020;11:599787. 10.3389/fneur.2020.599787.
  • Feenstra W, Tepper M, Boonstra AM, Otten B, de Vries S. Recovery of motor imagery ability in the first year after stroke. Int J Rehabil Res. 2016;39(2):171–75. doi:10.1097/MRR.0000000000000162
  • de Vries S, Tepper M, Otten B, Mulder T. Recovery of motor imagery ability in stroke patients. Rehabil Res Pract. 2011;2011:283840. 10.1155/2011/283840.

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