journal article Feb 01, 2014

Connectivity-based approaches in stroke and recovery of function

The Lancet Neurology Vol. 13 No. 2 pp. 206-216 · Elsevier BV
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References
97
[1]
Go "Heart disease and stroke statistics—2013 update: a report from the American Heart Association" Circulation (2013) 10.1161/cir.0b013e31828124ad
[2]
Factors Influencing Stroke Survivors’ Quality of Life During Subacute Recovery

Deborah S. Nichols-Larsen, P.C. Clark, Angelique Zeringue et al.

Stroke 2005 10.1161/01.str.0000170706.13595.4f
[3]
von Monakow (1914)
[4]
Feeney "Diaschisis" Stroke (1986) 10.1161/01.str.17.5.817
[5]
Wiesendanger "Constantin von Monakow (1853–1930): a pioneer in interdisciplinary brain research and a humanist" C R Biol (2006) 10.1016/j.crvi.2006.03.011
[6]
Finger "Chapter 51: recovery of function: redundancy and vicariation theories" Handb Clin Neurol (2010) 10.1016/s0072-9752(08)02151-9
[7]
The Monakow Concept of Diaschisis

Stanley Finger, Peter J. Koehler, Caroline Jagella

Archives of Neurology 2004 10.1001/archneur.61.2.283
[8]
Lakhan "Inflammatory mechanisms in ischemic stroke: therapeutic approaches" J Transl Med (2009) 10.1186/1479-5876-7-97
[9]
Kitagawa "CREB and cAMP response element-mediated gene expression in the ischemic brain" FEBS J (2007) 10.1111/j.1742-4658.2007.05890.x
[10]
Keyvani "Postlesional transcriptional regulation of metabotropic glutamate receptors: implications for plasticity and excitotoxicity" Acta Neuropathol (2001) 10.1007/s004010000339
[11]
Rueger "Noninvasive imaging of endogenous neural stem cell mobilization in vivo using positron emission tomography" J Neurosci (2010) 10.1523/jneurosci.6092-09.2010
[12]
Johansson "Early and delayed induction of immediate early gene expression in a novel focal cerebral ischemia model in the rat" Eur J Neurosci (2000) 10.1046/j.1460-9568.2000.00252.x
[13]
Carmichael "New patterns of intracortical projections after focal cortical stroke" Neurobiol Dis (2001) 10.1006/nbdi.2001.0425
[14]
Nudo "Neural substrates for the effects of rehabilitative training on motor recovery after ischemic infarct" Science (1996) 10.1126/science.272.5269.1791
[15]
Nudo "Reorganization of movement representations in primary motor cortex following focal ischemic infarcts in adult squirrel monkeys" J Neurophysiol (1996) 10.1152/jn.1996.75.5.2144
[16]
Frost "Reorganization of remote cortical regions after ischemic brain injury: a potential substrate for stroke recovery" J Neurophysiol (2003) 10.1152/jn.01143.2002
[17]
Dancause "Extensive cortical rewiring after brain injury" J Neurosci (2005) 10.1523/jneurosci.3256-05.2005
[18]
McNeal "Selective long-term reorganization of the corticospinal projection from the supplementary motor cortex following recovery from lateral motor cortex injury" J Comp Neurol (2010) 10.1002/cne.22218
[19]
Zaaimi "Changes in descending motor pathway connectivity after corticospinal tract lesion in macaque monkey" Brain (2012) 10.1093/brain/aws115
[20]
Belhaj-Saïf "Plasticity in the distribution of the red nucleus output to forearm muscles after unilateral lesions of the pyramidal tract" J Neurophysiol (2000) 10.1152/jn.2000.83.5.3147
[21]
Kuypers "Anatomy of the descending pathways" (1981)
[22]
Nishimura "Time-dependent central compensatory mechanisms of finger dexterity after spinal cord injury" Science (2007) 10.1126/science.1147243
[23]
Carmichael "Synchronous neuronal activity is a signal for axonal sprouting after cortical lesions in the adult" J Neurosci (2002) 10.1523/jneurosci.22-14-06062.2002
[24]
Ward "Future perspectives in functional neuroimaging in stroke recovery" Eura Medicophys (2007)
[25]
Frackowiak "Functional neuroanatomy of the human brain: positron emission tomography--a new neuroanatomical technique" J Anat (1994)
[26]
Ogawa "Brain magnetic resonance imaging with contrast dependent on blood oxygenation" Proc Natl Acad Sci USA (1990) 10.1073/pnas.87.24.9868
[27]
Tecchio "Morphology of somatosensory evoked fields: inter-hemispheric similarity as a parameter for physiological and pathological neural connectivity" Neurosci Lett (2000) 10.1016/s0304-3940(00)01171-x
[28]
Friston "Functional and effective connectivity in neuroimaging: a synthesis" Hum Brain Mapp (1994) 10.1002/hbm.460020107
[29]
Wang "Dynamic functional reorganization of the motor execution network after stroke" Brain (2010) 10.1093/brain/awq043
[30]
Eickhoff "Approaches for the integrated analysis of structure, function and connectivity of the human brain" Clin EEG Neurosci (2011) 10.1177/155005941104200211
[31]
Functional connectivity in the motor cortex of resting human brain using echo‐planar mri

Bharat Biswal, F. Zerrin Yetkin, Victor M. Haughton et al.

Magnetic Resonance in Medicine 1995 10.1002/mrm.1910340409
[32]
Rehme "State-dependent differences between functional and effective connectivity of the human cortical motor system" Neuroimage (2013) 10.1016/j.neuroimage.2012.11.027
[33]
Friston "Dynamic causal modelling" Neuroimage (2003) 10.1016/s1053-8119(03)00202-7
[34]
Cerebral network disorders after stroke: evidence from imaging‐based connectivity analyses of active and resting brain states in humans

Anne K. Rehme, Christian Grefkes

The Journal of Physiology 2013 10.1113/jphysiol.2012.243469
[35]
Grefkes "Reorganization of cerebral networks after stroke: new insights from neuroimaging with connectivity approaches" Brain (2011) 10.1093/brain/awr033
[36]
Wang "Degeneration of corpus callosum and recovery of motor function after stroke: a multimodal magnetic resonance imaging study" Hum Brain Mapp (2012) 10.1002/hbm.21417
[37]
Le Bihan "Diffusion tensor imaging: concepts and applications" J Magn Reson Imaging (2001) 10.1002/jmri.1076
[38]
Le Bihan "Diffusion MRI at 25: exploring brain tissue structure and function" Neuroimage (2012) 10.1016/j.neuroimage.2011.11.006
[39]
Weber "Early prediction of functional recovery after experimental stroke: functional magnetic resonance imaging, electrophysiology, and behavioral testing in rats" J Neurosci (2008) 10.1523/jneurosci.4147-07.2008
[40]
Dijkhuizen "Functional magnetic resonance imaging of reorganization in rat brain after stroke" Proc Natl Acad Sci USA (2001) 10.1073/pnas.231235598
[41]
Rehme "The role of the contralesional motor cortex for motor recovery in the early days after stroke assessed with longitudinal FMRI" Cereb Cortex (2011) 10.1093/cercor/bhq140
[42]
Marshall "Evolution of cortical activation during recovery from corticospinal tract infarction" Stroke (2000) 10.1161/01.str.31.3.656
[43]
Ward "Neural correlates of motor recovery after stroke: a longitudinal fMRI study" Brain (2003) 10.1093/brain/awg245
[44]
Ward "Neural correlates of outcome after stroke: a cross-sectional fMRI study" Brain (2003) 10.1093/brain/awg145
[45]
Dijkhuizen "Correlation between brain reorganization, ischemic damage, and neurologic status after transient focal cerebral ischemia in rats: a functional magnetic resonance imaging study" J Neurosci (2003) 10.1523/jneurosci.23-02-00510.2003
[46]
Laaksonen "Alterations in spontaneous brain oscillations during stroke recovery" PLoS One (2013) 10.1371/journal.pone.0061146
[47]
Tombari "A longitudinal fMRI study: in recovering and then in clinically stable sub-cortical stroke patients" Neuroimage (2004) 10.1016/j.neuroimage.2004.07.058
[48]
Braun "Crossed cortico-spinal motor control after capsular stroke" Eur J Neurosci (2007) 10.1111/j.1460-9568.2007.05526.x
[49]
Activation likelihood estimation meta-analysis of motor-related neural activity after stroke

Anne K. Rehme, Simon B. Eickhoff, Claudia Rottschy et al.

NeuroImage 2012 10.1016/j.neuroimage.2011.10.023
[50]
Takeuchi "Repetitive transcranial magnetic stimulation of contralesional primary motor cortex improves hand function after stroke" Stroke (2005) 10.1161/01.str.0000189658.51972.34

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Published
Feb 01, 2014
Vol/Issue
13(2)
Pages
206-216
Cite This Article
Christian Grefkes, Gereon R Fink (2014). Connectivity-based approaches in stroke and recovery of function. The Lancet Neurology, 13(2), 206-216. https://doi.org/10.1016/s1474-4422(13)70264-3