MRI-Compatible Device for Examining Brain Activation Related to Stepping
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Francis R. Loayza | Marta Vidorreta | María A. Pastor | María A. Fernández-Seara | Gonzalo Arrondo | Javier Diaz | Martin Martinez | Elkin Luis | Federico Villagra | Mikel Echeverria | M. Vidorreta | E. Luis | F. Villagra | M. Fernández-Seara | M. Pastor | G. Arrondo | F. Loayza | Martín Martínez | Javier Diaz | M. Echeverria | M. Martínez
[1] Xue Zhang,et al. Visual guidance modulates hemispheric asymmetries during an interlimb coordination task , 2010, NeuroImage.
[2] M. Corbetta,et al. Extrastriate body area in human occipital cortex responds to the performance of motor actions , 2004, Nature Neuroscience.
[3] W. D. Penny,et al. Random-Effects Analysis , 2002 .
[4] M. Erb,et al. Sensorimotor mapping of the human cerebellum: fMRI evidence of somatotopic organization , 2001, Human brain mapping.
[5] K. Kubota,et al. Cortical Mapping of Gait in Humans: A Near-Infrared Spectroscopic Topography Study , 2001, NeuroImage.
[6] R. Turner,et al. Characterizing Evoked Hemodynamics with fMRI , 1995, NeuroImage.
[7] Susan T. Francis,et al. fMRI analysis of active, passive and electrically stimulated ankle dorsiflexion , 2009, NeuroImage.
[8] P A Bandettini,et al. Relationship between Finger Movement Rate and Functional Magnetic Resonance Signal Change in Human Primary Motor Cortex , 1996, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[9] Alain Berthoz,et al. A fronto-parietal system for computing the egocentric spatial frame of reference in humans , 1999, Experimental Brain Research.
[10] K L Leenders,et al. Right parieto-premotor activation related to limb-independent antiphase movement. , 2002, Cerebral cortex.
[11] M. Corbetta,et al. Control of goal-directed and stimulus-driven attention in the brain , 2002, Nature Reviews Neuroscience.
[12] P. Matthews,et al. Identifying brain regions for integrative sensorimotor processing with ankle movements , 2005, Experimental Brain Research.
[13] David A. Winter,et al. Human balance and posture control during standing and walking , 1995 .
[14] Fred W. Mast,et al. The neural basis of the egocentric and allocentric spatial frame of reference , 2007, Brain Research.
[15] G. Glover,et al. Methods and Software for fMRI Analysis of Clinical Subjects , 2009, NeuroImage.
[16] B. Feige,et al. The Role of Higher-Order Motor Areas in Voluntary Movement as Revealed by High-Resolution EEG and fMRI , 1999, NeuroImage.
[17] B. Schmit,et al. A novel technique for examining human brain activity associated with pedaling using fMRI , 2009, Journal of Neuroscience Methods.
[18] Katiuscia Sacco,et al. Motor imagery of walking following training in locomotor attention. The effect of ‘the tango lesson’ , 2006, NeuroImage.
[19] Roger P. Woods,et al. Ankle dorsiflexion as an fMRI paradigm to assay motor control for walking during rehabilitation , 2004, NeuroImage.
[20] Thomas Brandt,et al. Real versus imagined locomotion: A [18F]-FDG PET-fMRI comparison , 2010, NeuroImage.
[21] Robert Riener,et al. Mutual interferences and design principles for mechatronic devices in magnetic resonance imaging , 2011, International Journal of Computer Assisted Radiology and Surgery.
[22] Yun Dong,et al. Reliable assessment of lower limb motor representations with fMRI: Use of a novel MR compatible device for real-time monitoring of ankle, knee and hip torques , 2008, NeuroImage.
[23] Noritaka Kawashima,et al. Alternate leg movement amplifies locomotor-like muscle activity in spinal cord injured persons. , 2005, Journal of neurophysiology.
[24] S. Rossignol,et al. Dynamic sensorimotor interactions in locomotion. , 2006, Physiological reviews.
[25] B. R. Bloem,et al. Recent advances in functional neuroimaging of gait , 2007, Journal of Neural Transmission.
[26] Karl J. Friston,et al. Unified segmentation , 2005, NeuroImage.
[27] Jing Z. Liu,et al. Relationship between muscle output and functional MRI-measured brain activation , 2001, Experimental Brain Research.
[28] Kamil Ugurbil,et al. Functional imaging of the motor system , 1994, Current Opinion in Neurobiology.
[29] H Johansen-Berg,et al. Towards an understanding of gait control: brain activation during the anticipation, preparation and execution of foot movements , 2004, NeuroImage.
[30] Scott T. Grafton,et al. Motor subcircuits mediating the control of movement velocity: a PET study. , 1998, Journal of neurophysiology.
[31] Akira Toyomura,et al. Self-paced and externally triggered rhythmical lower limb movements: A functional MRI study , 2012, Neuroscience Letters.
[32] J. F. Stein,et al. Role of the cerebellum in the visual guidance of movement , 1986, Nature.
[33] F. Prince,et al. Symmetry and limb dominance in able-bodied gait: a review. , 2000, Gait & posture.
[34] D. Ortendahl,et al. Measuring signal-to-noise ratios in MR imaging. , 1989, Radiology.
[35] S. Lehéricy,et al. Foot, hand, face and eye representation in the human striatum. , 2003, Cerebral cortex.
[36] Jeffrey M. Hausdorff,et al. When human walking becomes random walking: fractal analysis and modeling of gait rhythm fluctuations. , 2001, Physica A.
[37] V. Dietz,et al. Brain activity during stepping: A novel MRI-compatible device , 2011, Journal of Neuroscience Methods.
[38] Karl J. Friston,et al. Movement‐Related effects in fMRI time‐series , 1996, Magnetic resonance in medicine.
[39] P. Strick,et al. Basal ganglia and cerebellar loops: motor and cognitive circuits , 2000, Brain Research Reviews.
[40] W. Penny,et al. Random-Effects Analysis , 2002 .
[41] M. Goldberg,et al. Neuronal Activity in the Lateral Intraparietal Area and Spatial Attention , 2003, Science.
[42] Martin Wiesmann,et al. Brain activation patterns during imagined stance and locomotion in functional magnetic resonance imaging , 2004, NeuroImage.
[43] Francis R. Loayza,et al. Right parietal dominance in spatial egocentric discrimination , 2011, NeuroImage.
[44] Tom Johnstone,et al. Motion correction and the use of motion covariates in multiple‐subject fMRI analysis , 2006, Human brain mapping.
[45] M. Jüptner,et al. A review of differences between basal ganglia and cerebellar control of movements as revealed by functional imaging studies. , 1998, Brain : a journal of neurology.
[46] D. Louis Collins,et al. Unbiased average age-appropriate atlases for pediatric studies , 2011, NeuroImage.
[47] Karl J. Friston,et al. The Functional Neuroanatomy of Temporal Discrimination , 2004, The Journal of Neuroscience.
[48] Jun Tanji,et al. Differential involvement of neurons in the dorsal and ventral premotor cortex during processing of visual signals for action planning. , 2006, Journal of neurophysiology.
[49] A. Berthoz,et al. Reference Frames for Spatial Cognition: Different Brain Areas are Involved in Viewer-, Object-, and Landmark-Centered Judgments About Object Location , 2004, Journal of Cognitive Neuroscience.
[50] Ronald R. Peeters,et al. Lateralization of brain activity during lower limb joints movement. An fMRI study , 2006, NeuroImage.
[51] M Hallett,et al. Self-paced versus metronome-paced finger movements. A positron emission tomography study. , 1997, Journal of neuroimaging : official journal of the American Society of Neuroimaging.
[52] R. C. Oldfield. The assessment and analysis of handedness: the Edinburgh inventory. , 1971, Neuropsychologia.
[53] Paul Van Hecke,et al. Brain Areas Involved in Interlimb Coordination: A Distributed Network , 2001, NeuroImage.
[54] Stephen M. Rao,et al. The evolution of brain activation during temporal processing , 2001, Nature Neuroscience.
[55] G. Orban,et al. Motion-responsive regions of the human brain , 1999, Experimental Brain Research.
[56] S. Swinnen. Intermanual coordination: From behavioural principles to neural-network interactions , 2002, Nature Reviews Neuroscience.
[57] Gabriel Taubin,et al. Estimation of Planar Curves, Surfaces, and Nonplanar Space Curves Defined by Implicit Equations with Applications to Edge and Range Image Segmentation , 1991, IEEE Trans. Pattern Anal. Mach. Intell..