Cortical adaptation in patients with MS: a cross-sectional functional MRI study of disease phenotypes

The Lancet Neurology - Tập 4 Số 10 - Trang 618-626 - 2005
Maria A. Rocca1, Bruno Colombo2, Andrea Falini3, Angelo Ghezzi4, Vittorio Martinelli2, Giuseppe Scotti3, Gıancarlo Comı2, Massimo Filippi1
1Neuroimaging Research Unit, Milan
2Department of Neurology, Milan
3Department of Neuroradiology Scientific Institute and University Ospedale San Raffaele, Milan
4Department of Neurology, Ospedale di Gallarate, Gallarate, Italy

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Filippi, 2003, The use of quantitative magnetic-resonance-based techniques to monitor the evolution of multiple sclerosis, Lancet Neurol, 2, 337, 10.1016/S1474-4422(03)00408-3

Filippi, 2003, Disturbed function and plasticity in multiple sclerosis as gleaned from functional magnetic resonance imaging, Curr Opin Neurol, 16, 275, 10.1097/00019052-200306000-00005

Filippi, 2004, Cortical reorganisation in patients with MS, J Neurol Neurosurg Psychiatry, 75, 1087, 10.1136/jnnp.2004.036020

Calautti, 2003, Functional neuroimaging studies of motor recovery after stroke in adults: a review, Stroke, 34, 1553, 10.1161/01.STR.0000071761.36075.A6

Elbert, 2004, Reorganization of human cerebral cortex: the range of changes following use and injury, Neuroscientist, 10, 129, 10.1177/1073858403262111

Reddy, 2000, Relating axonal injury to functional recovery in MS, Neurology, 54, 236, 10.1212/WNL.54.1.236

Filippi, 2004, A functional MRI study of cortical activations associated with object manipulation in patients with MS, NeuroImage, 21, 1147, 10.1016/j.neuroimage.2003.10.023

Filippi, 2004, Simple and complex movement—associated functional MRI changes in patients at presentation with clinically isolated syndromes suggestive of multiple sclerosis, Hum Brain Mapp, 21, 108, 10.1002/hbm.10160

Rocca, 2002, Adaptive functional changes in the cerebral cortex of patients with non-disabling MS correlate with the extent of brain structural damage, Ann Neurol, 51, 330, 10.1002/ana.10120

Rocca, 2003, A functional magnetic resonance imaging study of patients with secondary progressive multiple sclerosis, NeuroImage, 19, 1770, 10.1016/S1053-8119(03)00242-8

Rocca, 2003, Evidence for axonal pathology and adaptive cortical reorganization in patients at presentation with clinically isolated syndromes suggestive of multiple sclerosis, NeuroImage, 18, 847, 10.1016/S1053-8119(03)00043-0

Kurtzke, 1983, Rating neurological impairment in multiple sclerosis: an expanded disability status scale (EDSS), Neurology, 33, 1444, 10.1212/WNL.33.11.1444

Friston, 1995, Analysis of fMRI time-series revisited, NeuroImage, 2, 45, 10.1006/nimg.1995.1007

Filippi, 2001, Diffusion tensor magnetic resonance imaging in multiple sclerosis, Neurology, 56, 304, 10.1212/WNL.56.3.304

Herndon, 1997

Worsley, 1995, Analysis of fMRI time-series revisited—again, Neuroimage, 2, 173, 10.1006/nimg.1995.1023

Friston, 1999, Multisubject fMRI studies and conjunction analyses, NeuroImage, 10, 385, 10.1006/nimg.1999.0484

McDonald, 2001, Recommended diagnostic criteria for multiple sclerosis: guidelines from the International Panel on the diagnosis of multiple sclerosis, Ann Neurol, 50, 121, 10.1002/ana.1032

Lublin, 1996, Defining the clinical course of multiple sclerosis: results of an international survey, Neurology, 46, 907, 10.1212/WNL.46.4.907

Fink, 1997, Multiple nonprimary motor areas in the human cortex, J Neurophysiol, 77, 2164, 10.1152/jn.1997.77.4.2164

Chen, 2002, Nervous system reorganization following injury, Neuroscience, 111, 761, 10.1016/S0306-4522(02)00025-8

Jancke, 2000, Cortical activations in primary and secondary motor areas for complex bimanual movements in professional pianists, Brain Res Cogn Brain Res, 10, 177, 10.1016/S0926-6410(00)00028-8

Krings, 2000, Cortical activation patterns during complex motor tasks in piano players and control subjects: a functional magnetic resonance imaging study, Neurosci Lett, 278, 189, 10.1016/S0304-3940(99)00930-1

Pearce, 2000, Functional reorganisation of the corticomotor projection to the hand in skilled racquet players, Exp Brain Res, 130, 238, 10.1007/s002219900236

Karni, 1995, Functional MRI evidence for adult motor cortex plasticity during motor skill learning, Nature, 377, 155, 10.1038/377155a0

Weilke, 2001, Time-resolved fMRI of activation patterns in M1 and SMA during complex voluntary movement, J Neurophysiol, 85, 1858, 10.1152/jn.2001.85.5.1858

Rouiller, 1994, Transcallosal connections of the distal forelimb representations of the primary and supplementary motor cortical areas in macaque monkeys, Exp Brain Res, 102, 227, 10.1007/BF00227511

Dum, 1996, Spinal cord terminations of the medial wall motor areas in macaque monkeys, J Neurosci, 16, 6513, 10.1523/JNEUROSCI.16-20-06513.1996

Rouiller, 1996, Evidence for direct connections between the hand region of the supplementary motor area and cervical motoneurons in the macaque monkey, Eur J Neurosci, 8, 1055, 10.1111/j.1460-9568.1996.tb01592.x

Maier, 2002, Differences in the corticospinal projection from primary motor cortex and supplementary motor area to macaque upper limb motoneurons: an anatomical and electrophysiological study, Cereb Cortex, 12, 281, 10.1093/cercor/12.3.281

Yoshiura, 1997, Increased activity of the ipsilateral motor cortex during a hand motor task in patients with brain tumor and paresis, AJNR Am J Neuroradiol, 18, 865

Vandermeeren, 2003, Functional reorganization of brain in children affected with congenital hemiplegia: fMRI study, NeuroImage, 20, 289, 10.1016/S1053-8119(03)00262-3

Thobois, 2000, Overactivation of primary motor cortex is asymmetrical in hemiparkinsonian patients, Neuroreport, 11, 785, 10.1097/00001756-200003200-00026

Rao, 1993, Functional magnetic resonance imaging of complex human movements, Neurology, 43, 2311, 10.1212/WNL.43.11.2311

Wexler, 1997, An fMRI study of the human cortical motor system response to increasing functional demands, Magn Reson Imaging, 15, 385, 10.1016/S0730-725X(96)00232-9

Marshall, 2000, Evolution of cortical activation during recovery from corticospinal tract infarction, Stroke, 31, 656, 10.1161/01.STR.31.3.656

Loubinoux, 2003, Correlation between cerebral reorganization and motor recovery after subcortical infarcts, NeuroImage, 20, 2166, 10.1016/j.neuroimage.2003.08.017

Luft, 2004, Lesion location alters brain activation in chronically impaired stroke survivors, NeuroImage, 21, 924, 10.1016/j.neuroimage.2003.10.026

Nhan, 2004, Brain function early after stroke in relation to subsequent recovery, J Cereb Blood Flow Metab, 24, 756, 10.1097/01.WCB.0000122744.72175.9C

Pantano, 2002, Contribution of corticospinal tract damage to cortical motor reorganization after a single clinical attack of multiple sclerosis, NeuroImage, 17, 1837, 10.1006/nimg.2002.1313

Rocca, 2004, Pyramidal tract lesions and movement-associated cortical recruitment in patients with MS, NeuroImage, 23, 141, 10.1016/j.neuroimage.2004.05.005

Lee, 2000, The motor cortex shows adaptive functional changes to brain injury from multiple sclerosis, Ann Neurol, 47, 606, 10.1002/1531-8249(200005)47:5<606::AID-ANA8>3.0.CO;2-L

Reddy, 2002, Functional brain reorganization for hand movement in patients with multiple sclerosis: defining distinct effects of injury and disability, Brain, 125, 2646, 10.1093/brain/awf283

Filippi, 2002, Correlations between structural CNS damage and functional MRI changes in primary progressive MS, NeuroImage, 15, 537, 10.1006/nimg.2001.1023

Karhu, 1999, Simultaneous early processing of sensory input in human primary (SI) and secondary (SII) somatosensory cortices, J Neurophysiol, 81, 2017, 10.1152/jn.1999.81.5.2017

Hamalainen, 2000, fMRI activations of SI and SII cortices during tactile stimulation depend on attention, Neuroreport, 11, 1673, 10.1097/00001756-200006050-00016

Disbrow, 2000, Somatotopic organization of cortical fields in the lateral sulcus of Homo sapiens: evidence for SII and PV, J Comp Neurol, 418, 1, 10.1002/(SICI)1096-9861(20000228)418:1<1::AID-CNE1>3.0.CO;2-P

Stephan, 1995, Functional anatomy of the mental representation of upper extremity movements in healthy subjects, J Neurophysiol, 73, 373, 10.1152/jn.1995.73.1.373

Binkofski, 1999, A fronto-parietal circuit for object manipulation in man: evidence from an fMRI study, Eur J Neurosci, 11, 3276, 10.1046/j.1460-9568.1999.00753.x

Harrington, 2000, Specialized neural systems underlying representations of sequential movements, J Cogn Neurosci, 12, 56, 10.1162/08989290051137602

Haslinger, 2002, The role of lateral premotor-cerebellar-parietal circuits in motor sequence control: a parametric fMRI study, Brain Res Cogn Brain Res, 13, 159, 10.1016/S0926-6410(01)00104-5

Jeannerod, 1999, Mental imaging of motor activity in humans, Curr Opin Neurobiol, 9, 735, 10.1016/S0959-4388(99)00038-0

Brooks, 1995, The role of the basal ganglia in motor control: contributions from PET, J Neurol Sci, 128, 1, 10.1016/0022-510X(94)00206-4

Parent, 1995, Functional anatomy of the basal ganglia, I: the cortico-basal ganglia-thalamo-cortical loop, Brain Res Brain Res Rev, 20, 91, 10.1016/0165-0173(94)00007-C

Rizzolatti, 2001, The cortical motor system, Neuron, 31, 889, 10.1016/S0896-6273(01)00423-8

Picard, 1996, Motor areas of the medial wall: a review of their location and functional activation, Cereb Cortex, 6, 342, 10.1093/cercor/6.3.342

Cohen, 2002, A common reference frame for movement plans in the posterior parietal cortex, Nat Rev Neurosci, 3, 553, 10.1038/nrn873

Rizzolatti, 1997, Parietal cortex: from sight to action, Curr Opin Neurobiol, 7, 562, 10.1016/S0959-4388(97)80037-2

Johnson, 2002, Selective activation of a parietofrontal circuit during implicitly imagined prehension, NeuroImage, 17, 1693, 10.1006/nimg.2002.1265

Pantano, 2005, A longitudinal fMRI study on motor activity in patients with multiple sclerosis, Brain, 10.1093/brain/awh549

Floyer-Lea, 2005, Distinguishable brain activation networks for short- and long-term motor skill learning, J Neurophysiol, 94, 512, 10.1152/jn.00717.2004

Staffen, 2002, Cognitive function and fMRI in patients with multiple sclerosis: evidence for compensatory cortical activation during an attention task, Brain, 125, 1275, 10.1093/brain/awf125

Mainero, 2004, fMRI evidence of brain reorganization during attention and memory tasks in multiple sclerosis, NeuroImage, 21, 858, 10.1016/j.neuroimage.2003.10.004