Cerebellar contributions to working memory
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[1] M Kawato,et al. Internal models for motor control. , 2007, Novartis Foundation symposium.
[2] N. Ramnani. The primate cortico-cerebellar system: anatomy and function , 2006, Nature Reviews Neuroscience.
[3] Jonathan D. Wallis,et al. A Comparison of Abstract Rules in the Prefrontal Cortex, Premotor Cortex, Inferior Temporal Cortex, and Striatum , 2006, Journal of Cognitive Neuroscience.
[4] Timothy Edward John Behrens,et al. The evolution of prefrontal inputs to the cortico-pontine system: diffusion imaging evidence from Macaque monkeys and humans. , 2006, Cerebral cortex.
[5] Alfonso Barrós-Loscertales,et al. Cortical reorganization during PASAT task in MS patients with preserved working memory functions , 2006, NeuroImage.
[6] Julie A Fiez,et al. Cerebellar damage produces selective deficits in verbal working memory. , 2006, Brain : a journal of neurology.
[7] John E. Desmond,et al. Temporal dynamics of cerebro-cerebellar network recruitment during a cognitive task , 2005, Neuropsychologia.
[8] Richard B. Ivry,et al. Reduced phonological similarity effects in patients with damage to the cerebellum , 2005, Brain and Language.
[9] S. H. A. Chen,et al. Cerebellar transcranial magnetic stimulation impairs verbal working memory , 2005, Annals of neurology.
[10] Deborah A. Hall,et al. Reading Fluent Speech from Talking Faces: Typical Brain Networks and Individual Differences , 2005, Journal of Cognitive Neuroscience.
[11] Vincent L. Gracco,et al. Imaging speech production using fMRI , 2005, NeuroImage.
[12] Kathryn M. McMillan,et al. N‐back working memory paradigm: A meta‐analysis of normative functional neuroimaging studies , 2005, Human brain mapping.
[13] Simon B. Eickhoff,et al. A new SPM toolbox for combining probabilistic cytoarchitectonic maps and functional imaging data , 2005, NeuroImage.
[14] M. Garwicz,et al. Anatomical and physiological foundations of cerebellar information processing , 2005, Nature Reviews Neuroscience.
[15] Bertrand Audoin,et al. Magnetic resonance study of the influence of tissue damage and cortical reorganization on PASAT performance at the earliest stage of multiple sclerosis , 2005, Human brain mapping.
[16] E. Miller,et al. Different time courses of learning-related activity in the prefrontal cortex and striatum , 2005, Nature.
[17] M. Erb,et al. fMRI reveals two distinct cerebral networks subserving speech motor control , 2005, Neurology.
[18] D. Ibarrola,et al. Functional MRI study of PASAT in normal subjects , 2005, Magnetic Resonance Materials in Physics, Biology and Medicine.
[19] John E. Desmond,et al. Load- and practice-dependent increases in cerebro-cerebellar activation in verbal working memory: an fMRI study , 2005, NeuroImage.
[20] Peter A. Bandettini,et al. Experimental designs and processing strategies for fMRI studies involving overt verbal responses , 2004, NeuroImage.
[21] R. E. Passingham,et al. Prediction error for free monetary reward in the human prefrontal cortex , 2004, NeuroImage.
[22] J. Schmahmann. Disorders of the cerebellum: ataxia, dysmetria of thought, and the cerebellar cognitive affective syndrome. , 2004, The Journal of neuropsychiatry and clinical neurosciences.
[23] Katsuyuki Sakai,et al. The prefrontal cortex and working memory: physiology and brain imaging , 2004, Current Opinion in Neurobiology.
[24] Caterina Mainero,et al. fMRI evidence of brain reorganization during attention and memory tasks in multiple sclerosis , 2004, NeuroImage.
[25] Timothy Edward John Behrens,et al. Functional Asymmetry for Auditory Processing in Human Primary Auditory Cortex , 2003, The Journal of Neuroscience.
[26] P. Matthews,et al. Defining a left-lateralized response specific to intelligible speech using fMRI. , 2003, Cerebral cortex.
[27] Thomas E. Nichols,et al. Controlling the familywise error rate in functional neuroimaging: a comparative review , 2003, Statistical methods in medical research.
[28] Bertrand Audoin,et al. Compensatory cortical activation observed by fMRI during a cognitive task at the earliest stage of multiple sclerosis , 2003, Human brain mapping.
[29] P. Strick,et al. Cerebellar Loops with Motor Cortex and Prefrontal Cortex of a Nonhuman Primate , 2003, The Journal of Neuroscience.
[30] C. Curtis,et al. Persistent activity in the prefrontal cortex during working memory , 2003, Trends in Cognitive Sciences.
[31] E. Miller,et al. From rule to response: neuronal processes in the premotor and prefrontal cortex. , 2003, Journal of neurophysiology.
[32] Michael J Brammer,et al. Functional magnetic resonance imaging of verbal fluency and confrontation naming using compressed image acquisition to permit overt responses , 2003, Human brain mapping.
[33] M. Hallett,et al. Functional properties of brain areas associated with motor execution and imagery. , 2003, Journal of neurophysiology.
[34] Masao Ito,et al. Historical Review of the Significance of the Cerebellum and the Role of Purkinje Cells in Motor Learning , 2002, Annals of the New York Academy of Sciences.
[35] Steve C R Williams,et al. Acoustic noise and functional magnetic resonance imaging: Current strategies and future prospects , 2002, Journal of magnetic resonance imaging : JMRI.
[36] Katsuyuki Sakai,et al. Learning of sequences of finger movements and timing: frontal lobe and action-oriented representation. , 2002, Journal of neurophysiology.
[37] D. Pandya,et al. Comparative cytoarchitectonic analysis of the human and the macaque ventrolateral prefrontal cortex and corticocortical connection patterns in the monkey , 2002, The European journal of neuroscience.
[38] S. Golaszewski,et al. Cognitive function and fMRI in patients with multiple sclerosis: evidence for compensatory cortical activation during an attention task. , 2002, Brain : a journal of neurology.
[39] R. Passingham,et al. Learning Arbitrary Visuomotor Associations: Temporal Dynamic of Brain Activity , 2001, NeuroImage.
[40] R. E. Passingham,et al. Changes in the Human Brain during Rhythm Learning , 2001, Journal of Cognitive Neuroscience.
[41] R. Passingham,et al. Timing error in the human brain during classical eyeblink conditioning: An event-related fMRI study , 2001, NeuroImage.
[42] Karl J. Friston,et al. Modelling Geometric Deformations in Epi Time Series , 2022 .
[43] W. Grodd,et al. Differential Contributions of Motor Cortex, Basal Ganglia, and Cerebellum to Speech Motor Control: Effects of Syllable Repetition Rate Evaluated by fMRI , 2001, NeuroImage.
[44] P. Strick,et al. Cerebellar Projections to the Prefrontal Cortex of the Primate , 2001, The Journal of Neuroscience.
[45] John E. Desmond,et al. Cerebellar involvement in cognitive function: evidence from neuroimaging , 2001 .
[46] Masao Ito. Mechanisms of motor learning in the cerebellum 1 1 Published on the World Wide Web on 24 November 2000. , 2000, Brain Research.
[47] N Ramnani,et al. Learning- and expectation-related changes in the human brain during motor learning. , 2000, Journal of neurophysiology.
[48] Alan C. Evans,et al. MRI Atlas of the Human Cerebellum , 2000 .
[49] W Grodd,et al. Opposite hemispheric lateralization effects during speaking and singing at motor cortex, insula and cerebellum , 2000, Neuroreport.
[50] Karl J. Friston,et al. Multisubject fMRI Studies and Conjunction Analyses , 1999, NeuroImage.
[51] P S Goldman-Rakic,et al. Association of Storage and Processing Functions in the Dorsolateral Prefrontal Cortex of the Nonhuman Primate , 1999, The Journal of Neuroscience.
[52] J. Fuster,et al. From perception to action: temporal integrative functions of prefrontal and parietal neurons. , 1999, Cerebral cortex.
[53] J. Jonides,et al. Storage and executive processes in the frontal lobes. , 1999, Science.
[54] D. Pandya,et al. Dorsolateral prefrontal cortex: comparative cytoarchitectonic analysis in the human and the macaque brain and corticocortical connection patterns , 1999, The European journal of neuroscience.
[55] P. Strick,et al. The Organization of Cerebellar and Basal Ganglia Outputs to Primary Motor Cortex as Revealed by Retrograde Transneuronal Transport of Herpes Simplex Virus Type 1 , 1999, The Journal of Neuroscience.
[56] H. E. Brown,et al. Utilizing hemodynamic delay and dispersion to detect fMRI signal change without auditory interference: The behavior interleaved gradients technique , 1999, Magnetic resonance in medicine.
[57] M. Molinari,et al. Verbal short-term store-rehearsal system and the cerebellum. Evidence from a patient with a right cerebellar lesion. , 1998, Brain : a journal of neurology.
[58] D M Wolpert,et al. Multiple paired forward and inverse models for motor control , 1998, Neural Networks.
[59] J. Jonides,et al. Neuroimaging analyses of human working memory. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[60] J. Desmond,et al. Neuroimaging studies of the cerebellum: language, learning and memory , 1998, Trends in Cognitive Sciences.
[61] R W Cox,et al. Magnetic field changes in the human brain due to swallowing or speaking , 1998, Magnetic resonance in medicine.
[62] W. Grodd,et al. Does the cerebellum contribute to cognitive aspects of speech production? A functional magnetic resonance imaging (fMRI) study in humans , 1998, Neuroscience Letters.
[63] J. Desmond,et al. Dissociation of Frontal and Cerebellar Activity in a Cognitive Task: Evidence for a Distinction between Selection and Search , 1998, NeuroImage.
[64] R. Cox,et al. Improved technique for study of brain activity during swallowing by functional magnetic resonance imaging (FMRI) , 1998 .
[65] J. Schmahmann,et al. The cerebellar cognitive affective syndrome. , 1998, Brain : a journal of neurology.
[66] J. Desmond,et al. Lobular Patterns of Cerebellar Activation in Verbal Working-Memory and Finger-Tapping Tasks as Revealed by Functional MRI , 1997, The Journal of Neuroscience.
[67] Stefano F. Cappa,et al. Agrammatic speech production after a right cerebellar haemorrhage , 1997 .
[68] Edward E. Smith,et al. Verbal Working Memory Load Affects Regional Brain Activation as Measured by PET , 1997, Journal of Cognitive Neuroscience.
[69] Edward E. Smith,et al. Temporal dynamics of brain activation during a working memory task , 1997, Nature.
[70] E. Courchesne,et al. Attentional Activation of the Cerebellum Independent of Motor Involvement , 1997, Science.
[71] Richard S. J. Frackowiak,et al. Anatomy of motor learning. II. Subcortical structures and learning by trial and error. , 1997, Journal of neurophysiology.
[72] D. Pandya,et al. Anatomic Organization of the Basilar Pontine Projections from Prefrontal Cortices in Rhesus Monkey , 1997, The Journal of Neuroscience.
[73] Daniel M. Wolpert,et al. Forward Models for Physiological Motor Control , 1996, Neural Networks.
[74] R. Passingham. Attention to action. , 1996, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[75] Edward E. Smith,et al. PET Evidence for an Amodal Verbal Working Memory System , 1996, NeuroImage.
[76] Karl J. Friston,et al. Analysis of fMRI Time-Series Revisited , 1995, NeuroImage.
[77] M. Glickstein,et al. Motor skills but not cognitive tasks , 1993, Trends in Neurosciences.
[78] A. L. Leiner,et al. Cognitive and language functions of the human cerebellum , 1993, Trends in Neurosciences.
[79] Richard S. J. Frackowiak,et al. The neural correlates of the verbal component of working memory , 1993, Nature.
[80] Karl J. Friston,et al. Functional mapping of brain areas implicated in auditory--verbal memory function. , 1993, Brain : a journal of neurology.
[81] J. Bloedel. Functional heterogeneity with structural homogeneity: How does the cerebellum operate? , 1992 .
[82] E. Cabanis,et al. The Human Brain: Surface, Three-Dimensional Sectional Anatomy and Mri , 1991 .
[83] G. M. Murray,et al. Organization of the primate face motor cortex as revealed by intracortical microstimulation and electrophysiological identification of afferent inputs and corticobulbar projections. , 1988, Journal of neurophysiology.
[84] Per Brodal,et al. Principles of organization of the monkey corticopontine projection , 1978, Brain Research.
[85] D. Gronwall. Paced Auditory Serial-Addition Task: A Measure of Recovery from Concussion , 1977, Perceptual and motor skills.
[86] D. Marr. A theory of cerebellar cortex , 1969, The Journal of physiology.
[87] A. Walker,et al. A cytoarchitectural study of the prefrontal area of the macaque monkey , 1940 .
[88] G. Holmes. THE CEREBELLUM OF MAN , 1939 .
[89] W. Penfield,et al. SOMATIC MOTOR AND SENSORY REPRESENTATION IN THE CEREBRAL CORTEX OF MAN AS STUDIED BY ELECTRICAL STIMULATION , 1937 .
[90] G. Holmes. THE SYMPTOMS OF ACUTE CEREBELLAR INJURIES DUE TO GUNSHOT INJURIES , 1917 .
[91] Masao Ito. Bases and implications of learning in the cerebellum--adaptive control and internal model mechanism. , 2005, Progress in brain research.
[92] R. Zatorre,et al. Perception auditive et imagerie par résonance magnétique fonctionnelle (IRMf) , 2000 .
[93] R. Bowtell,et al. “sparse” temporal sampling in auditory fMRI , 1999, Human brain mapping.
[94] J Drepper,et al. Non-motor associative learning in patients with isolated degenerative cerebellar disease. , 1999, Brain : a journal of neurology.
[95] R W Cox,et al. Event‐related fMRI of tasks involving brief motion , 1999, Human brain mapping.
[96] U Klose,et al. Comparing motion‐ and imagery‐related activation in the human cerebellum: A functional MRI study , 1998, Human brain mapping.
[97] L. Parsons,et al. Sensory and cognitive functions. , 1997, International review of neurobiology.
[98] S. Petersen,et al. PET activation of posterior temporal regions during auditory word presentation and verb generation. , 1996, Cerebral cortex.
[99] M. Glickstein,et al. Corticopontine projection in the rat: The distribution of labelled cortical cells after large injections of horseradish peroxidase in the pontine nuclei , 1989, The Journal of comparative neurology.
[100] J. Jansen,et al. The Comparative Anatomy and Histology of the Cerebellum: The Human Cerebellum, Cerebellar Connections, and Cerebellar Cortex , 1972 .
[101] C. Monakow,et al. Die Lokalisation im Grosshirn und der Abbau der Funktion durch kortikale Herde , 1914 .