371
Views
3
CrossRef citations to date
0
Altmetric
Research Papers

Spectral analysis of centre of pressure identifies altered balance control in individuals with moderate-severe traumatic brain injury

, &
Pages 519-527 | Received 27 Oct 2017, Accepted 12 Jul 2018, Published online: 16 Oct 2018

References

  • Walker WC, Pickett TC. Motor impairment after severe traumatic brain injury: a longitudinal multicenter study. J Rehabil Res Dev. 2007;44:975–982.
  • Horak FB. Postural orientation and equilibrium: what do we need to know about neural control of balance to prevent falls? Age Ageing. 2006;35:ii7–ii11.
  • McKechnie D, Pryor J, Fisher MJ. Falls and fallers in traumatic brain injury (TBI) rehabilitation settings: an integrative review. Disabil Rehabil. 2015;37:2291–2299.
  • McKechnie D, Pryor J, Fisher MJ. An examination of patient characteristics that contribute to falls in the inpatient traumatic brain injury rehabilitation setting. Disabil Rehabil. 2017;39:1864–1871.
  • Basford JR, Chou LS, Kaufman KR, et al. An assessment of gait and balance deficits after traumatic brain injury. Arch Phys Med Rehabil. 2003;84:343–349.
  • Geurts AC, Ribbers GM, Knoop JA, et al. Identification of static and dynamic postural instability following traumatic brain injury. Arch Phys Med Rehabil. 1996;77:639–644.
  • Habib Perez O, Green RE, Mochizuki G. Characterization of stability control in early recovery from traumatic brain injury. International Society of Posture and Gait Research World Congress; 2015 Jun 28–Jul 2; Seville, Spain.
  • Lehmann JF, Boswell S, Price R, et al. Quantitative evaluation of sway as an indicator of functional balance in post-traumatic brain injury. Arch Phys Med Rehabil. 1990;71:955–962.
  • Pickett TC, Radfar-Baublitz LS, McDonald SD, et al. Objectively assessing balance deficits after TBI: role of computerized posturography. J Rehabil Res Dev. 2007;44:983–990.
  • Wade LD, Canning CG, Fowler V, et al. Changes in postural sway and performance of functional tasks during rehabiliation after traumatic brain injury. Arch Phys Med Rehabil. 1997;78:1107–1111.
  • Newton RA. Balance abilities in individuals with moderate and severe traumatic brain injury. Brain Inj. 1995;9:445–451.
  • Arce FI, Katz N, Sugarman H. The scaling of postural adjustments during bimanual load-lifting in traumatic brain-injured adults. Hum Mov Sci. 2004;22:749–768.
  • Habib Perez O, Green RE, Mochizuki G. Characterization of balance control after moderate-severe traumatic brain injury: a longitudinal recovery study. Phys Ther. DOI:10.1093/ptj/pzy065.
  • Zatsiorsky VM, Duarte M. Instant equilibrium point and its migration in standing tasks: rambling and trembling components of the stabilogram. Motor Control. 1999;3:28–38.
  • Carpenter MG, Murnaghan CD, Inglis JT. Shifting the balance: evidence of an exploratory role for postural sway. Neuroscience. 2010;171:196–204.
  • Latash ML, Ferreira SS, Wieczorek SA, et al. Movement sway: changes in postural sway during voluntary shifts of the center of pressure. Exp Brain Res. 2003;150:314–324.
  • Kiemel T, Oie KS, Jeka JJ. Slow dynamics of postural sway are in the feedback loop. J Neurophysiol. 2006;95:1410–1418.
  • Gatev P, Thomas S, Kepple T, et al. Feedforward ankle strategy of balance during quiet stance in adults. J Physiol. 1999;514:915–928.
  • Wolpert DM, Kawato M. Multiple paired forward and inverse models for motor control. Neural Netw. 1998;11:1317–1329.
  • Massion J. Movement, posture and equilibrium: interaction and coordination. Prog Neurobiol. 1992;38:35–56.
  • Singer JC, Mochizuki G. Post-Stroke lower limb spasticity alters the interlimb temporal synchronization of centre of pressure displacements across multiple timescales. IEEE Trans Neural Syst Rehabil Eng. 2015;23:786–795.
  • Schinkel-Ivy A, Singer JC, Inness EL, et al. Do quiet standing centre of pressure measures within specific frequencies differ based on ability to recover balance in individuals with stroke? Clin Neurophysiol. 2016;127:2463–2471.
  • Paillex R, So A. Posture debout chez des sujets adultes: spécificités de l’hémiplégie. Ann Réadapt Méd Phys. 2003;46:71–78.
  • Yanohara R, Teranishi T, Yutaka T, et al. Recovery process of standing postural control in hemiplegia after stroke. J Phys Ther Sci. 2014;26:1761–1765.
  • Kanekar N, Lee YJ, Aruin AS. Frequency analysis approach to study balance control in individuals with multiple sclerosis. J Neurosci Methods. 2014;222:91–96.
  • Winter DA, Prince F, Stergiou P, et al. Medial-lateral and anterior-posterior motor responses associated with centre of pressure changes in quiet standing. Neurosci Res Commun. 1993;12:141–148.
  • Choi GS, Kim OL, Kim SH, et al. Classification of cause of motor weakness in traumatic brain injury using diffusion tensor imaging. Arch Neurol. 2012;69:363–367.
  • Mansfield A, Danells CJ, Inness EL, et al. Between-limb synchronization for control of standing balance in individuals with stroke. Clin Biomech. 2011;26:312–317.
  • Mansfield A, Mochizuki G, Inness EL, et al. Clinical correlates of between-limb synchronization of standing balance control and falls during inpatient stroke rehabilitation. Neurorehabil Neural Repair. 2012;26:627–635.
  • Singer JC, Mansfield A, Danells CJ, et al. The effect of post-stroke lower-limb spasticity on the control of standing balance: inter-limb spatial and temporal synchronisation of centres of pressure. Clin Biomech. 2013;28:921–926.
  • Myklebust JB, Lovett EG, Myklebust BM, et al. Two-dimensional coherence for measurement of asymmetry in postural steadiness. Gait Posture. 2009;29:1–5.
  • Howe J, Inness EL, Wright V. The community balance & mobility scale. 2011. [cited 2016 Sep 1]. Available from: http://www.tbims.org/combi/cbm
  • McIlroy WE, Maki BE. Preferred placement of the feet during quiet stance: development of a standardized foot placement for balance testing. Clin Biomech. 1997;12:66–70.
  • Mima T, Hallett M. Corticomuscular coherence: a review. J Clin Neurophysiol. 1999;16:501–511.
  • Rosenberg JR, Amjad AM, Breeze P, et al. The fourier approach to the identification of functional coupling between neuronal spike trains. Prog Biophys Mol Biol. 1989;53:1–31.
  • Wade MG, Jones G. The role of vision and spatial orientation in the maintenance of posture. Phys Ther. 1997;77:619–628.
  • Shumway-Cook A, Horak FB. Assessing the influence of sensory interaction of balance. Suggestion from the field. Phys Ther. 1986;66:1548–1550.
  • Dijkstra TM, Schoner G, Giese MA, et al. Frequency dependence of the action-perception cycle for postural control in a moving visual environment: relative phase dynamics. Biol Cybern. 1994;71:489–501.
  • Bertenthal BI, Rose JL, Bai DL. Perception-action coupling in the development of visual control of posture. J Exp Psychol Hum Percept Perform. 1997;23:1631–1643.
  • Moraes R, de Freitas PB, Razuk M, et al. Quality of visual cue affects visual reweighting in quiet standing. PLoS One. 2016;11:e0150158.
  • Nagy E, Toth K, Janositz G, et al. Postural control in athletes participating in an ironman triathlon. Eur J Appl Physiol. 2004;92:407–413.
  • Bizid R, Jully JL, Gonzalez G, et al. Effects of fatigue induced by neuromuscular electrical stimulation on postural control. J Sci Med Sport. 2009;12:60–66.
  • Nagy E, Feher-Kiss A, Barnai M, et al. Postural control in elderly subjects participating in balance training. Eur J Appl Physiol. 2007;100:97–104.
  • Winter DA. Human balance and posture control standing and walking. Gait Posture. 1995;3:193–214.
  • Mohapatra S, Aruin AS. Static and dynamic visual cues in feed-forward postural control. Exp Brain Res. 2013;224:25–34.
  • Mohapatra S, Krishnan V, Aruin AS. The effect of decreased visual acuity on control of posture. Clin Neurophysiol. 2012;123:173–182.
  • Palmieri RM, Ingersoll CD, Stone MB, et al. Center-of-pressure parameters used in the assessment of postural control. J Sport Rehabil. 2002;11:51–66.
  • Forbes PA, Siegmund GP, Schouten AC, et al. Task, muscle and frequency dependent vestibular control of posture. Front Integr Neurosci. 2015;8:94.
  • Fitzpatrick R, Burke D, Gandevia SC. Loop gain of reflexes controlling human standing measured with the use of postural and vestibular disturbances. J Neurophysiol. 1996;76:3994–4008.
  • Brang D, Taich ZJ, Hillyard SA, et al. Parietal connectivity mediates multisensory facilitation. Neuroimage. 2013;78:396–401.
  • Ghazanfar AA, Schroeder CE. Is neocortex essentially multisensory? Trends Cogn Sci. 2006;10:278–285.
  • Ghajar J, Ivry RB. The predictive brain state: timing deficiency in traumatic brain injury? Neurorehabil Neural Repair. 2008;22:217–227.
  • Segalowitz SJ, Dywan J, Unsal A. Attentional factors in response time variability after traumatic brain injury: an ERP study. J Int Neuropsychol Soc. 1997;3:95–107.
  • Di Russo F, Incoccia C, Formisano R, et al. Abnormal motor preparation in severe traumatic brain injury with good recovery. J Neurotruama. 2005;22:297–312.
  • Horak FB, Diener HC, Nashner LM. Influence of central set on human postural responses. J Neurophysiol. 1989;62:841–853.
  • Mochizuki G, Boe S, Marlin A, et al. Perturbation-evoked cortical activity reflects both the context and consequence of postural instability. Neuroscience. 2010;170:599–609.
  • McIlroy WE, Maki BE. The control of lateral stability during rapid stepping reactions evoked by anteroposterior perturbation: does anticipatory control play a role? Gait Posture. 1999;9:190–198.
  • Maki BE, McIlroy WE. The role of limb movements in maintaining upright stance: the “change-in-support” strategy. Phys Ther. 1997;77:488–507.
  • Habib Perez O, Singer JC, Mochizuki G. The effects of predictability on inter-limb postural synchronization prior to bouts of postural instability. Gait Posture. 2016;46:167–172.
  • de Kam D, Kamphuis JF, Weerdesteyn V, et al. The effect of weight-bearing asymmetry on dynamic postural stability in healthy young individuals. Gait Posture. 2016;45:56–61.
  • McCulloch KL, Buxton E, Hackney J, et al. Balance, attention, and dual-task performance during walking after brain injury: associations with falls history. J Head Trauma Rehabil. 2010;25:155–163.
  • Vuillerme N, Vincent H. How performing a mental arithmetic task modify the regulation of centre of foot pressure displacements during bipedal quiet standing. Exp Brain Res. 2006;169:130–134.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.