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Case Study

Effect of modified constraint-induced movement therapy on lower extremity hemiplegia due to a higher-motor area lesion

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Pages 898-904 | Received 26 Mar 2008, Accepted 20 Aug 2008, Published online: 03 Jul 2009

References

  • Wolf SL, Lecraw DE, et al. Forced use of hemiplegic upper extremities to reverse the effect of learned nonuse among chronic stroke and head-injured patients. Experimental Neurology 1989; 104: 125–132
  • Levy CE, Nichol DS, et al. Functional MRI evidence of cortical reorganization in upper-limb stroke hemiplegia treated with constraint-induced movement therapy. American Journal of Physical Medicine and Rehabilitation 2001; 80: 4–12
  • Nudo RJ. Cortical plasticity after stroke: Implications for rehabilitation. Reviews in Neurology 1999; 155: 713–717
  • Nudo RJ. Recovery after damage to motor cortical areas. Current Opinions in Neurobiology 1999; 9: 740–747
  • Nudo RJ. Adaptive plasticity in motor cortex: Implications for rehabilitation after brain injury. Journal of Rehabilitation Medicine 2003; 41: 7–10
  • Hakim RM, Kelly SJ, et al. Case report: A modified constraint induced therapy (m-CIT) program for the upper extremity of a person with chronic stroke. Physiotherapy Theory and Practice 2005; 21: 243–256
  • Naylor CE, Bower E. Modified constraint-induced movement therapy for young children with hemiplegic cerebral palsy: A pilot study. Developmental Medicine in Child Neurology 2005; 47: 365–369
  • Page SJ, Sisto SA, et al. Modified constraint-induced therapy in chronic stroke. American Journal of Physical Medicine and Rehabilitation 2002; 81: 870–875
  • Yen JG, Wang RY, et al. Effectiveness of modified constraint-induced movement therapy on upper limb function in stroke subjects. Acta Neurologica Taiwan 2005; 14: 16–20
  • Marklund I, Klässbo M. Effects of lower limb intensive mass practice in post-stroke patients: Single subject experimental design with long-term follow-up. Clinical Rehabilitation 2006; 20: 568–576
  • Seyffarth H, Denny-Brown D. The grasp reflex and the instinctive grasp reaction. Brain 1948; 71: 109–189
  • Brunnstrom S. Movement therapy in hemiplegia: A neurophysiological approach. Herper & Row, New York 1970
  • Folstein MF, Folstein SE, McHugh PR. Mini-mental state. A practical method for grading the cognitive state of patients for the clinician. Journal of Psychiatric Research 1975; 12: 189–198
  • Della Sala S, Francescani A, Spinnler H. Gait apraxia after bilateral supplementary motor area after lesion. Journal of Neurology, Neurosurgery and Psychiatry 2002; 72: 77–85
  • Petrovici I. Apraxia of gait and trunk movement in man suggests it walks as a supramotor area. Science 1979; 206: 847–850
  • Bobath B. Adult hemiplegia. Evaluation and treatment3rd. Heinemann Medical, Oxford 1990
  • Tanji J, Taniguti K, Saga T. The supplementary motor area: Neuronal responses to motor instruction. Journal of Neurophysiology 1980; 43: 60–68
  • Tanji J, Shima K. Role of supplementary motor area cells in planning several movements ahead. Nature 1994; 371: 413–416
  • Goldberg G, Myer N, Toglia JU. Medial frontal cortex infarction and alien hand sign. Archives of Neurology 1984; 38: 683–686
  • Goldberg G. Supplementary motor area structure and function: Review and hypothesis. Behavioral Brain Science 1985; 8: 567–616
  • Nutt JG, Marsden CD, et al. Human walking and higher-level gait disorders particularly in the elderly. Neurology 1993; 43: 268–279
  • Yazawa S, Shibasaki H, Ikeda A, Terada K, Nagmine T, Honada M. Cortical mechanism underlying externally cued gait initiation studied by contingent negative variation. 1997; 105: 390–399
  • Fukuyama H, Ouchi Y, et al. Brain function activity during gait in normal subjects: A SPECT study. Neuroscience Letters 1997; 13: 183–186
  • Miyai I, Tanabe HC, et al. Cortical mapping of gait in humans: A near-infrared spectroscopic tomography study. Neuroimage 2001; 14: 1186–1192
  • Mori S, Nishimura H, Kurakami C, Yamamura T, Aoki M. Controlled locomotion in the mesencephalic cat: Distribution of facilitatory and inhibitory regions within pontine tegmentum. Journal of Neurophysiology 1978; 41: 1580–1591
  • Shik ML, Orlovsky GN. Neurophysiology of locomotor automatism. Physiology Review 1976; 56: 465–501
  • Ward NS, Brown MM, et al. Neural correlates of outcome after stroke: A cross-sectional fMRI study. Brain 2003; 126: 1430–1448
  • Pons TR, Garraghty PE, Mishkin M. Lesion-induced plasticity in the second somatosensory cortex of adult macaques. Proceedings of the National Academy of Sciences (USA) 1988; 85: 5279–5281
  • Ito K, Miura M, et al. Voltage-gated Ca2+ channel blockers, omega-AgaIVA and Ni2+, suppress the induction of theta-burst induced long-term potentiation in guinea-pig hippocampal CA1 neurons. Neuroscience Letters 1995; 183: 112–115
  • Classen J, Lipert A, et al. Rapid plasticity of human cortical movement representation induced by practice. Journal of Neurophysiology 1998; 79: 1117–1123
  • Iriki A, Tanaka M, et al. Coding of modified body schema during tool use by macaque postcentral neurones. Neuroreport 1996; 7: 2325–2330
  • Wolfgang HR, Miltner WH, Bauder H, Sommer M, Dettmers C, Taub E. Effects of constraint-induced movement therapy on patients with chronic motor deficits after stroke: A replication. Stroke 1999; 30: 586–592
  • Bowman MH, Taub E, Uswatte G, Delgado A, Bryson C, Orris DM, McKay S, Mark W. A treatment for a chronic stroke patient with a plegic hand combining CI therapy with conventional rehabilitation procedures: Case report. NeuroRehabilitation 2006; 21: 167–176
  • Watson MJ, Crosby P, Matthews M. An evaluation of the effects of a dynamic lycra orthosis on arm function in a late stage patient with acquired brain injury. Brain Injury 2007; 21: 753–761

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