Abstract
Functional magnetic resonance imaging (fMRI) provides an opportunity to study the relationship between cerebral reorganization and functional recovery after stroke. The authors set out to demonstrate the feasibility of using fMRI to investigate mechanisms of recovery in individual patients presenting with severe motor impairment. fMRI was performed during passive movement at both affected and unaffected wrists separately in 2 patients with pure motor stroke. Six scanning sessions were performed in each patient over the first 4 months after stroke. Seven control subjects were also studied, 1 of them over 6 sessions. The authors examined for longitudinal changes in cerebral responses to proprioceptive afferent input that correlated with motor recovery. In control subjects, passive movement of either wrist led to relative increases in brain activation in the contralateral sensorimotor cortex and supplementary motor area, the bilateral inferior parietal cortex and secondary somatosensory areas, and the ipsilateral cerebellum. Increases in brain activation correlating with motor recovery were observed in both the ipsilesional primary sensory and primary motor cortex in 1 patient with good motor recovery but not in another patient with poor recovery. No longitudinal changes were seen in the control subject. These 2 case reports demonstrate that functionally relevant changes in cerebral organization can be identified in individual patients.
MeSH Terms
Adult
Aged
Brain Infarction/complications,pathology,physiopathology
Case-Control Studies
Cerebral Cortex/pathology,physiopathology
Feasibility Studies
Humans
Longitudinal Studies
Magnetic Resonance Imaging
Middle Aged
Motor Activity/physiology
Physical Stimulation
Proprioception/physiology
Recovery of Function/physiology
Stroke/etiology,pathology,physiopathology
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Ward Nick S
Wellcome Department of Imaging Neuroscience, Institute of Neurology, University College London, London, UK. n.ward@fil.ion.ucl.ac.uk
Brown Martin M
Thompson Alan J
Frackowiak Richard S J
References (14)
14 references, click to expand
-
Evolution of functional reorganization in hemiplegic stroke: a serial positron emission tomographic activation study.
Ann Neurol. 1999 Dec;46(6):901-9
PMID: 10589543
-
Evolution of cortical activation during recovery from corticospinal tract infarction.
Stroke. 2000 Mar;31(3):656-61
PMID: 10700500
-
Experience-associated structural events, subependymal cellular proliferative activity, and functional recovery after injury to the central nervous system.
J Cereb Blood Flow Metab. 2000 Nov;20(11):1513-28
PMID: 11083226
-
Modeling geometric deformations in EPI time series.
Neuroimage. 2001 May;13(5):903-19
PMID: 11304086
-
Sequential activation brain mapping after subcortical stroke: changes in hemispheric balance and recovery.
Neuroreport. 2001 Dec 21;12(18):3883-6
PMID: 11742203
-
Central mechanisms of motor skill learning.
Curr Opin Neurobiol. 2002 Apr;12(2):217-22
PMID: 12015240
-
A longitudinal fMRI study: in recovering and then in clinically stable sub-cortical stroke patients.
Neuroimage. 2004 Nov;23(3):827-39
PMID: 15528083
-
Correlation between cerebral reorganization and motor recovery after subcortical infarcts.
Neuroimage. 2003 Dec;20(4):2166-80
PMID: 14683720
-
Motor recovery following capsular stroke. Role of descending pathways from multiple motor areas.
Brain. 1993 Apr;116 ( Pt 2):369-82
PMID: 8461971
-
Projection from the sensory to the motor cortex is important in learning motor skills in the monkey.
J Neurophysiol. 1993 Aug;70(2):733-41
PMID: 8410169
-
Responses of motor cortical cells to short trains of vibration.
Exp Brain Res. 1996 Sep;111(2):208-14
PMID: 8891651
-
Analysis of fMRI time-series revisited--again.
Neuroimage. 1995 Sep;2(3):173-81
PMID: 9343600
-
Brain representation of active and passive movements.
Neuroimage. 1996 Oct;4(2):105-10
PMID: 9345502
-
Neural correlates of motor recovery after stroke: a longitudinal fMRI study.
Brain. 2003 Nov;126(Pt 11):2476-96
PMID: 12937084