Frontal and parietal theta burst TMS impairs working memory for visual-spatial conjunctions
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Margaret C. Jackson | Kimron L. Shapiro | Helen M. Morgan | Margaret C Jackson | K. Shapiro | D. Linden | H. M. Morgan | Martijn G. van Koningsbruggen | David E.J. Linden
[1] Yuhong Jiang,et al. Resolving dual-task interference: an fMRI study , 2004, NeuroImage.
[2] P. Bublak,et al. Combined processing of what and where information within the visuospatial scratchpad , 2005 .
[3] C. Caltagirone,et al. Keeping memory for intentions: a cTBS investigation of the frontopolar cortex. , 2011, Cerebral cortex.
[4] Alan Cowey,et al. Cortical plasticity in perceptual learning demonstrated by transcranial magnetic stimulation , 1998, Neuropsychologia.
[5] D. Linden,et al. The Working Memory Networks of the Human Brain , 2007, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[6] Antonino Vallesi,et al. Role of the prefrontal cortex in the foreperiod effect: TMS evidence for dual mechanisms in temporal preparation. , 2006, Cerebral cortex.
[7] L. Ada. Working memory load modulates the auditory "what" and "where" neural networks , 2011 .
[8] Hing Yee Eng,et al. Visual working memory for simple and complex visual stimuli. , 2010, Psychonomic bulletin & review.
[9] A. Strafella,et al. Continuous theta burst stimulation of right dorsolateral prefrontal cortex induces changes in impulsivity level , 2010, Brain Stimulation.
[10] Alan Cowey,et al. Temporal aspects of visual search studied by transcranial magnetic stimulation , 1997, Neuropsychologia.
[11] Alan Cowey,et al. Transcranial magnetic stimulation and cognitive neuroscience , 2000, Nature Reviews Neuroscience.
[12] Edward K. Vogel,et al. The capacity of visual working memory for features and conjunctions , 1997, Nature.
[13] Edward E. Smith,et al. Neuroimaging studies of working memory: , 2003, Cognitive, affective & behavioral neuroscience.
[14] Jane E Raymond,et al. Familiarity enhances visual working memory for faces. , 2008, Journal of experimental psychology. Human perception and performance.
[15] Hoi-Chung Leung,et al. Linear and nonlinear prefrontal and parietal activity during multiple-item working memory , 2011, NeuroImage.
[16] A. Treisman,et al. The Interaction of Spatial and Object Pathways: Evidence from Balint's Syndrome , 1997, Journal of Cognitive Neuroscience.
[17] R. Young,et al. Brain stimulation. , 1990, Neurosurgery clinics of North America.
[18] Nikolaus Weiskopf,et al. Causal evidence for frontal involvement in memory target maintenance by posterior brain areas during distracter interference of visual working memory , 2011, Proceedings of the National Academy of Sciences.
[19] M Petrides,et al. Impairments on nonspatial self-ordered and externally ordered working memory tasks after lesions of the mid-dorsal part of the lateral frontal cortex in the monkey , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[20] Jie Tian,et al. BRAIN IMAGING NEUROREPORT , 2007 .
[21] R. Goebel,et al. Imaging the brain activity changes underlying impaired visuospatial judgments: simultaneous FMRI, TMS, and behavioral studies. , 2007, Cerebral cortex.
[22] P. Cavanagh,et al. The Capacity of Visual Short-Term Memory is Set Both by Visual Information Load and by Number of Objects , 2004, Psychological science.
[23] S. Rossi,et al. Safety, ethical considerations, and application guidelines for the use of transcranial magnetic stimulation in clinical practice and research , 2009, Clinical Neurophysiology.
[24] Helen M. Morgan,et al. Neural Signatures of Stimulus Features in Visual Working Memory—A Spatiotemporal Approach , 2009, Cerebral cortex.
[25] C Caltagirone,et al. Parieto-frontal interactions in visual-object and visual-spatial working memory: evidence from transcranial magnetic stimulation. , 2001, Cerebral cortex.
[26] Thomas Dierks,et al. Tracking the Mind's Image in the Brain II Transcranial Magnetic Stimulation Reveals Parietal Asymmetry in Visuospatial Imagery , 2002, Neuron.
[27] I. M. Harris,et al. Selective right parietal lobe activation during mental rotation: a parametric PET study. , 2000, Brain : a journal of neurology.
[28] Rainer Goebel,et al. Optimizing Functional Accuracy of TMS in Cognitive Studies: A Comparison of Methods , 2009, Journal of Cognitive Neuroscience.
[29] Carlo Miniussi,et al. Parietal Lobe Contribution to Mental Rotation Demonstrated with rTMS , 2003, Journal of Cognitive Neuroscience.
[30] Simone Rossi,et al. The role of the left inferior frontal gyrus in episodic encoding of faces: An interference study by repetitive transcranial magnetic stimulation , 2010, Cognitive neuroscience.
[31] A. Aron,et al. Theta burst stimulation dissociates attention and action updating in human inferior frontal cortex , 2010, Proceedings of the National Academy of Sciences.
[32] A. Owen. The Functional Organization of Working Memory Processes Within Human Lateral Frontal Cortex: The Contribution of Functional Neuroimaging , 1997, The European journal of neuroscience.
[33] Michael Andres,et al. Double dissociation between motor and visual imagery in the posterior parietal cortex. , 2009, Cerebral cortex.
[34] A Tales,et al. Visual search in Alzheimer’s disease: a deficiency in processing conjunctions of features , 2002, Neuropsychologia.
[35] Adam Gazzaley,et al. Top-down modulation of visual feature processing: The role of the inferior frontal junction , 2010, NeuroImage.
[36] A. Cowey,et al. Human dorsolateral prefrontal cortex is involved in visual search for conjunctions but not features: A theta TMS study , 2009, Cortex.
[37] Juha Silvanto,et al. Time course of the state-dependent effect of transcranial magnetic stimulation in the TMS-adaptation paradigm , 2008, Neuroscience Letters.
[38] G. Orban,et al. Coding of Shape and Position in Macaque Lateral Intraparietal Area , 2008, The Journal of Neuroscience.
[39] A. Sereno,et al. Attention and memory-related responses of neurons in the lateral intraparietal area during spatial and shape-delayed match-to-sample tasks. , 2006, Journal of neurophysiology.
[40] Helen M. Morgan,et al. Strategic resource allocation in the human brain supports cognitive coordination of object and spatial working memory , 2010, Human brain mapping.
[41] Leslie G. Ungerleider,et al. Distinguishing the Functional Roles of Multiple Regions in Distributed Neural Systems for Visual Working Memory , 2000, NeuroImage.
[42] A. Treisman,et al. Parietal contributions to visual feature binding: evidence from a patient with bilateral lesions , 1995, Science.
[43] Joseph B. Sala,et al. Binding of What and Where During Working Memory Maintenance , 2007, Cortex.
[44] J. Rothwell,et al. Theta Burst Stimulation of the Human Motor Cortex , 2005, Neuron.
[45] S. Kosslyn,et al. Mental rotation of objects versus hands: neural mechanisms revealed by positron emission tomography. , 1998, Psychophysiology.
[46] Rainer Goebel,et al. Brain Network Dynamics Underlying Visuospatial Judgment: An fMRI Connectivity Study , 2010, Journal of Cognitive Neuroscience.
[47] J. Desmond,et al. Load-Dependent Roles of Frontal Brain Regions in the Maintenance of Working Memory , 1999, NeuroImage.
[48] M. Goldberg,et al. Space and attention in parietal cortex. , 1999, Annual review of neuroscience.
[49] David E. J. Linden,et al. Combining transcranial magnetic stimulation and functional imaging in cognitive brain research: possibilities and limitations , 2003, Brain Research Reviews.
[50] Joseph B. Sala,et al. Functional topography of a distributed neural system for spatial and nonspatial information maintenance in working memory , 2003, Neuropsychologia.
[51] A. Cowey,et al. Neural activation state determines behavioral susceptibility to modified theta burst transcranial magnetic stimulation , 2007, The European journal of neuroscience.
[52] W. Singer,et al. Distributed cortical systems in visual short-term memory revealed by event-related functional magnetic resonance imaging. , 2002, Cerebral cortex.
[53] M. D’Esposito. Working memory. , 2008, Handbook of clinical neurology.
[54] Juha Silvanto,et al. Neural adaptation reveals state‐dependent effects of transcranial magnetic stimulation , 2007, The European journal of neuroscience.
[55] Alan D Baddeley,et al. Is there a specific executive capacity for dual task coordination? Evidence from Alzheimer's disease. , 2004, Neuropsychology.
[56] A Treisman,et al. Feature binding, attention and object perception. , 1998, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[57] Leslie G. Ungerleider,et al. Object and spatial visual working memory activate separate neural systems in human cortex. , 1996, Cerebral cortex.
[58] D. V. von Cramon,et al. Localization of Executive Functions in Dual-Task Performance with fMRI , 2002, Journal of Cognitive Neuroscience.
[59] Christopher Kennard,et al. Response-Dependent Contributions of Human Primary Motor Cortex and Angular Gyrus to Manual and Perceptual Sequence Learning , 2009, The Journal of Neuroscience.
[60] G. Humphreys,et al. Fractionating the binding process: neuropsychological evidence from reversed search efficiencies. , 2009, Journal of experimental psychology. Human perception and performance.
[61] Claude Alain,et al. Working memory load modulates the auditory “What” and “Where” neural networks , 2011, NeuroImage.
[62] J. Rothwell,et al. Low‐frequency repetitive transcranial magnetic stimulation suppresses specific excitatory circuits in the human motor cortex , 2008, The Journal of physiology.
[63] Karl Christoph Klauer,et al. Double dissociations in visual and spatial short-term memory. , 2004, Journal of experimental psychology. General.
[64] A. Treisman,et al. Binding in short-term visual memory. , 2002, Journal of experimental psychology. General.
[65] J. Mazziotta,et al. Brain Mapping: The Methods , 2002 .
[66] David E. J. Linden,et al. Separation of the Systems for Color and Spatial Manipulation in Working Memory Revealed by a Dual-task Procedure , 2005, Journal of Cognitive Neuroscience.
[67] M. Petrides,et al. Specialized systems for the processing of mnemonic information within the primate frontal cortex. , 1996, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[68] R. Goebel,et al. Content- and Task-Specific Dissociations of Frontal Activity during Maintenance and Manipulation in Visual Working Memory , 2006, The Journal of Neuroscience.
[69] Rainer Goebel,et al. Common neural substrates for visual working memory and attention , 2007, NeuroImage.
[70] A. Baddeley,et al. The Quarterly Journal of Experimental Psychology Section a Human Experimental Psychology Dementia and Working Memory Dementia and Working Memory , 2022 .
[71] P. Goldman-Rakic. Circuitry of Primate Prefrontal Cortex and Regulation of Behavior by Representational Memory , 2011 .
[72] A. Baddeley,et al. Pattern span: a tool for unwelding visuo–spatial memory , 1999, Neuropsychologia.
[73] Takatsune Kumada,et al. Visual search and memory search engage extensive overlapping cerebral cortices: an fMRI study , 2004, NeuroImage.
[74] R. Martyn Bracewell,et al. Feature integration in visual working memory: parietal gamma activity is related to cognitive coordination , 2011, Journal of neurophysiology.
[75] Rainer Goebel,et al. Cortical capacity constraints for visual working memory: dissociation of fMRI load effects in a fronto-parietal network , 2003, NeuroImage.
[76] Ethan R. Buch,et al. Distributed and causal influence of frontal operculum in task control , 2011, Proceedings of the National Academy of Sciences.
[77] Florin Dolcos,et al. Similarities and Differences in the Neural Correlates of Episodic Memory Retrieval and Working Memory , 2002, NeuroImage.
[78] Theodore P. Zanto,et al. Causal role of the prefrontal cortex in top-down modulation of visual processing and working memory , 2011, Nature Neuroscience.
[79] Tomáš Paus,et al. 25 – Combination of Transcranial Magnetic Stimulation and Brain Mapping , 2002 .
[80] Á. Pascual-Leone,et al. Transcranial magnetic stimulation: studying the brain-behaviour relationship by induction of 'virtual lesions'. , 1999, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[81] J. Duncan. An adaptive coding model of neural function in prefrontal cortex , 2001 .
[82] J. Jay Todd,et al. Capacity limit of visual short-term memory in human posterior parietal cortex , 2004, Nature.
[83] M Gangitano,et al. Segregation of areas related to visual working memory in the prefrontal cortex revealed by rTMS. , 2002, Cerebral cortex.
[84] Christopher L. Asplund,et al. Isolation of a Central Bottleneck of Information Processing with Time-Resolved fMRI , 2006, Neuron.
[85] Torsten Schubert,et al. Dissociable Neural Effects of Task Order Control and Task Set Maintenance during Dual-task Processing , 2008, Journal of Cognitive Neuroscience.
[86] Leslie G. Ungerleider,et al. A neural system for human visual working memory. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[87] Albert Postma,et al. Spatial working memory performance after high-frequency repetitive transcranial magnetic stimulation of the left and right posterior parietal cortex in humans , 2000, Neuroscience Letters.
[88] S. Kastner,et al. Two hierarchically organized neural systems for object information in human visual cortex , 2008, Nature Neuroscience.
[89] Torsten Schubert,et al. Neural mechanisms of concurrent stimulus processing in dual tasks , 2009, NeuroImage.