1,271
Views
23
CrossRef citations to date
0
Altmetric
Review Article

Augmented visual feedback-aided interventions for motor rehabilitation in Parkinson’s disease: a systematic review

ORCID Icon, , ORCID Icon & ORCID Icon
Pages 995-1011 | Received 19 Jul 2017, Accepted 15 Dec 2017, Published online: 09 Jan 2018

References

  • Jankovic J. Parkinson's disease: clinical features and diagnosis. J Neurol Neurosurg Psychiatry. 2008;79:368–376.
  • Hely MA, Morris JG, Reid WG, et al. Sydney multicenter study of Parkinson's disease: non-L-dopa-responsive problems dominate at 15 years. Mov Disord. 2005;20:190–199.
  • Paul SS, Sherrington C, Fung VS, et al. Motor and cognitive impairments in Parkinson disease: relationships with specific balance and mobility tasks. Neurorehabil Neural Repair. 2013;27:63–71.
  • Karlsen K, Tandberg E, Årsland D, et al. Health related quality of life in Parkinson's disease: a prospective longitudinal study. J Neurol Neurosurg Psychiatry. 2000;69:584–589.
  • Gage H, Storey L. Rehabilitation for Parkinson's disease: a systematic review of available evidence. Clin Rehabil. 2004;18:463–482.
  • Nijkrake M, Keus S, Kalf J, et al. Allied health care interventions and complementary therapies in Parkinson's disease. Parkinsonism Relat Disord. 2007;13:S488–S494.
  • Huse DM, Schulman K, Orsini L, et al. Burden of illness in Parkinson's disease. Mov Disord. 2005;20:1449–1454.
  • Keus SH, Bloem BR, Hendriks EJ, et al. Evidence-based analysis of physical therapy in Parkinson's disease with recommendations for practice and research. Mov Disord. 2007;22: 451–460.
  • Sturkenboom I, Thijssen M, Gons-van Elsacker J, et al. Guidelines for occupational therapy in Parkinson's disease rehabilitation. Nijmegen, The Netherlands/Miami (FL): ParkinsonNet/National Parkinson Foundation; 2012.
  • Kalf J, de Swart B, Bonnier M, et al. Guidelines for speech–language therapy in Parkinson's disease. Nijmegen, The Netherlands/Miami (FL): ParkinsonNet/National Parkinson Foundation; 2010.
  • Abbruzzese G, Marchese R, Avanzino L, et al. Rehabilitation for Parkinson's disease: current outlook and future challenges. Parkinsonism Relat Disord. 2016;22:S60–S64.
  • Doyon J, Bellec P, Amsel R, et al. Contributions of the basal ganglia and functionally related brain structures to motor learning. Behav Brain Res. 2009;199:61–75.
  • Wu T, Chan P, Hallett M. Effective connectivity of neural networks in automatic movements in Parkinson's disease. Neuroimage. 2010;49:2581–2587.
  • Siegert RJ, Taylor KD, Weatherall M, et al. Is implicit sequence learning impaired in Parkinson's disease? A meta-analysis. Neuropsychology 2006;20:490–495.
  • Hayes HA, Hunsaker N, Dibble LE. Implicit motor sequence learning in individuals with Parkinson disease: a meta-analysis. J Parkinsons Dis. 2015;5:549–560.
  • Nieuwboer A, Rochester L, Muncks L, et al. Motor learning in Parkinson's disease: limitations and potential for rehabilitation. Parkinsonism Relat Disord. 2009;15:s53–s58.
  • Drui G, Carnicella S, Carcenac C, et al. Loss of dopaminergic nigrostriatal neurons accounts for the motivational and affective deficits in Parkinson's disease. Mol Psychiatry. 2014;19:358–367.
  • Adamovich S, Berkinblit M, Hening W, et al. The interaction of visual and proprioceptive inputs in pointing to actual and remembered targets in Parkinson's disease. Neuroscience. 2001;104:1027–1041.
  • Lewis GN, Byblow WD, Walt SE. Stride length regulation in Parkinson's disease: the use of extrinsic, visual cues. Brain. 2000;123:2077–2090.
  • Schettino LF, Adamovich SV, Hening W, et al. Hand preshaping in Parkinson's disease: effects of visual feedback and medication state. Exp Brain Res. 2006;168:186–202.
  • Rickards C, Cody F. Proprioceptive control of wrist movements in Parkinson's disease. Reduced muscle vibration-induced errors. Brain. 1997;120:977–990.
  • Klockgether T, Borutta M, Rapp H, et al. A defect of kinesthesia in Parkinson's disease. Mov Disord. 1995;10:460–465.
  • Jobst EE, Melnick ME, Byl NN, et al. Sensory perception in Parkinson disease. Arch Neurol. 1997;54:450–454.
  • Barry G, Galna B, Rochester L. The role of exergaming in Parkinson’s disease rehabilitation: a systematic review of the evidence. J Neuroeng Rehabil. 2014;11:33.
  • Swinnen SP. Information feedback for motor skill learning: a review. In: HN Zelaznik, editor. Advances in motor learning and control. Champaign (IL): Human Kinetics; 1996. p. 37–66.
  • Montoya R, Dupui P, Pages B, et al. Step-length biofeedback device for walk rehabilitation. Med Biol Eng Comput. 1994;32:416–420.
  • Yunusova Y, Kearney E, Kulkarni M, et al. Game-based augmented visual feedback for enlarging speech movements in Parkinson's disease. J Speech Lang Hear Res. 2017; 60:1818–1825.
  • Molier BI, Van Asseldonk EH, Hermens HJ, et al. Nature, timing, frequency and type of augmented feedback; does it influence motor relearning of the hemiparetic arm after stroke? A systematic review. Disabil Rehabil. 2010;32: 1799–1809.
  • Lee TD, Swinnen SP, Serrien DJ. Cognitive effort and motor learning. Quest. 1994;46:328–344.
  • Lohse KR, Lang CE, Boyd LA. Is more better? Using metadata to explore dose–response relationships in stroke rehabilitation. Stroke. 2014;45:2053–2058.
  • Kwakkel G, Wagenaar RC, Koelman TW, et al. Effects of intensity of rehabilitation after stroke. A research synthesis. Stroke. 1997;28:1550–1556.
  • Young DE, Schmidt RA. Augmented kinematic feedback for motor learning. J Mot Behav. 1992;24:261–273.
  • Schmidt RA, Wulf G. Continuous concurrent feedback degrades skill learning: Implications for training and simulation. Hum Factors. 1997;39:509–525.
  • Winstein CJ, Schmidt RA. Reduced frequency of knowledge of results enhances motor skill learning. J Exp Psychol Learn Mem Cogn. 1990;16:677.
  • Pelosin E, Avanzino L, Barella R, et al. Treadmill training frequency influences walking improvements in subjects with Parkinson's disease: a randomized pilot study. Eur J Phys Rehabil Med. 2017;53:201–208.
  • Chiviacowsky S, Campos T, Domingues MR. Reduced frequency of knowledge of results enhances learning in persons with Parkinson's disease. Front Psychol. 2010;1:226.
  • Adams SG, Page AD, Jog M. Summary feedback schedules and speech motor learning in Parkinson’s disease. J Med Speech Lang Pathol. 2002;10:215–220.
  • Schmidt RA, Wrisberg CA. Motor learning and performance: a situation-based learning approach. 4th ed. Champaign (IL): Human Kinetics; 2008.
  • Higgins JPT, Altman DG, Sterne JAC. Chapter 8: Assessing risk of bias in included studies. In: Higgins JPT, Green S, editors. Cochrane handbook for systematic reviews of interventions. London: The Cochrane Collaboration; 2011.
  • World Health Organization. International Classification of Functioning, Disability and Health (ICF). Geneva, Switzerland: WHO; 2001.
  • Cohen J. Statistical power analysis for the behavioral sciences. Hillsdale (NJ): Lawrence Erlbaum Associates; 1988.
  • Pompeu JE, dos Santos Mendes FA, da Silva KG, et al. Effect of Nintendo Wii™-based motor and cognitive training on activities of daily living in patients with Parkinson's disease: a randomised clinical trial. Physiotherapy. 2012; 98:196–204.
  • dos Santos Mendes FA, Pompeu JE, Lobo AM, et al. Motor learning, retention and transfer after virtual-reality-based training in Parkinson's disease – effect of motor and cognitive demands of games: a longitudinal, controlled clinical study. Physiotherapy. 2012;98:217–223.
  • Athukorala RP, Jones RD, Sella O, et al. Skill training for swallowing rehabilitation in patients with Parkinson's disease. Arch Phys Med Rehabil. 2014;95:1374–1382.
  • Herz NB, Mehta SH, Sethi KD, et al. Nintendo Wii rehabilitation ("Wii-hab" provides benefits in Parkinson's disease). Parkinsonism Relat Disord. 2013;19:1039–1042.
  • Mhatre PV, Vilares I, Stibb SM, et al. Wii Fit balance board playing improves balance and gait in Parkinson disease. Pm R. 2013;5:769–777.
  • Zalecki T, Gorecka-Mazur A, Pietraszko W, et al. Visual feedback training using WII Fit improves balance in Parkinson’s disease. Folia Med Cracov. 2013;53:65–78.
  • Gonçalves GB, Leite MAA, Orsini M, et al. Effects of using the Nintendo Wii fit plus platform in the sensorimotor training of gait disorders in Parkinson’s disease. Neurol Int. 2014;6:1–3.
  • Holmes JD, Gu ML, Johnson AM, et al. The effects of a home-based virtual reality rehabilitation program on balance among individuals with Parkinson's disease. Phys Occup Ther Geriatr. 2013;31:241–253.
  • Esculier J-F, Vaudrin J, Bériault P, et al. Home-based balance training programme using Wii Fit with balance board for Parkinsons's disease: a pilot study. J Rehabil Med. 2012;44:144–150.
  • Byl N, Zhang W, Coo S, et al. Clinical impact of gait training enhanced with visual kinematic biofeedback: patients with Parkinson’s disease and patients stable post stroke. Neuropsychologia. 2015;79:332–343.
  • Lee N-Y, Lee D-K, Song H-S. Effect of virtual reality dance exercise on the balance, activities of daily living, and depressive disorder status of Parkinson’s disease patients. J Phys Ther Sci. 2015;27:145–147.
  • Liao Y-Y, Yang Y-R, Wu Y-R, et al. Virtual reality-based Wii fit training in improving muscle strength, sensory integration ability, and walking abilities in patients with Parkinson's disease: a randomized control trial. Int J Gerontol. 2015;9:190–195.
  • Pedreira G, Prazeres A, Cruz D, et al. Virtual games and quality of life in Parkinson’s disease: a randomised controlled trial. Adv Parkinson’s Dis. 2013;2:97–101.
  • Yang W-C, Wang H-K, Wu R-M, et al. Home-based virtual reality balance training and conventional balance training in Parkinson's disease: a randomized controlled trial. J Formos Med Assoc. 2016;115:734–743.
  • Yen C-Y, Lin K-H, Hu M-H, et al. Effects of virtual reality-augmented balance training on sensory organization and attentional demand for postural control in people with Parkinson disease: a randomized controlled trial. Phys Ther. 2011;91:862.
  • Stern G. Computer assisted psychomotor training in a specialized population. Fort Lauderdale (FL): Nova Southeastern University; 2009.
  • van den Heuvel MR, Kwakkel G, Beek PJ, et al. Effects of augmented visual feedback during balance training in Parkinson's disease: a pilot randomized clinical trial. Parkinsonism Relat Disord. 2014;20:1352–1358.
  • Shen X, Mak MK. Balance and gait training with augmented feedback improves balance confidence in people with Parkinson’s disease: a randomized controlled trial. Neurorehabil Neural Repair. 2014;28:524–535.
  • Hoehn MM, Yahr MD. Parkinsonism: onset, progression, and mortality. Neurology. 1967;17:427–442.
  • Goetz CG, Tilley BC, Shaftman SR, et al. Movement Disorder Society‐sponsored revision of the Unified Parkinson's Disease Rating Scale (MDS‐UPDRS): scale presentation and clinimetric testing results. Mov Disord. 2008; 23:2129–2170.
  • Sharma DA, Chevidikunnan MF, Khan FR, et al. Effectiveness of knowledge of result and knowledge of performance in the learning of a skilled motor activity by healthy young adults. J Phys Ther Sci. 2016;28:1482–1486.
  • Shea CH, Wulf G. Enhancing motor learning through external-focus instructions and feedback. Hum Mov Sci. 1999;18:553–571.
  • Hodges NJ, Franks IM. Learning a coordination skill: interactive effects of instruction and feedback. Res Q Exerc Sport. 2001;72:132–142.
  • Salmoni AW, Schmidt RA, Walter CB. Knowledge of results and motor learning: a review and critical reappraisal. Psychol Bull. 1984;95:355–386.
  • Potgieser AR, Roosma E, Beudel M, et al. The effect of visual feedback on writing size in Parkinson’s disease. Parkinson’s Dis. 2015;2015:857041.
  • Scott S, Caird F. The response of the apparent receptive speech disorder of Parkinson's disease to speech therapy. J Neurol Neurosurg Psychiatry. 1984;47:302–304.
  • Jenkinson C, Fitzpatrick R, Peto V, et al. The Parkinson's disease questionnaire (PDQ-39): development and validation of a Parkinson's disease summary index score. Age Ageing. 1997;26:353–357.
  • Miller I, Cronin-Golomb A. Gender differences in Parkinson's disease: clinical characteristics and cognition. Mov Disord. 2010;25:2695–2703.
  • Haaxma CA, Bloem BR, Borm GF, et al. Gender differences in Parkinson's disease. J Neurol Neurosurg Psychiatry. 2007;78:819–824.
  • Lubomski M, Rushworth RL, Lee W, et al. Sex differences in Parkinson's disease. J Clin Neurosci. 2014;21:1503–1506.
  • Jiam NTL, Li C, Agrawal Y. Hearing loss and falls: a systematic review and meta-analysis. Laryngoscope. 2016;126:2587–2596.
  • Schulz KF, Altman DG, Moher D. Consolidated Standards of Reporting Trials (CONSORT) 2010 statement: updated guidelines for reporting parallel group randomised trials. BMC Med. 2010;8:1–9.

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.