Electrophysiological evidence of sustained spatial attention effects over anterior cortex: Possible contribution of the anterior insula.
暂无分享,去创建一个
Donatella Spinelli | Marika Berchicci | Federico Quinzi | Rinaldo Livio Perri | Francesco Di Russo | D. Spinelli | F. Di Russo | F. Quinzi | R. Perri | M. Berchicci | A. F. Ten Brink | Antonia Francisca Ten Brink
[1] R. Knight,et al. Prefrontal cortex regulates inhibition and excitation in distributed neural networks. , 1999, Acta psychologica.
[2] M. Criaud,et al. Have we been asking the right questions when assessing response inhibition in go/no-go tasks with fMRI? A meta-analysis and critical review , 2013, Neuroscience & Biobehavioral Reviews.
[3] Maurizio Corbetta,et al. Electrophysiological Correlates of Stimulus-driven Reorienting Deficits after Interference with Right Parietal Cortex during a Spatial Attention Task: A TMS-EEG Study , 2012, Journal of Cognitive Neuroscience.
[4] Sabrina Pitzalis,et al. EEG–fMRI Combination for the Study of Visual Perception and Spatial Attention , 2014 .
[5] Florian Waszak,et al. Predictions through evidence accumulation over time , 2018, Scientific Reports.
[6] G. R Mangun,et al. Shifting visual attention in space: an electrophysiological analysis using high spatial resolution mapping , 2000, Clinical Neurophysiology.
[7] Donatella Spinelli,et al. The premotor role of the prefrontal cortex in response consistency. , 2015, Neuropsychology.
[8] D. Spinelli,et al. Brain waves from an “isolated” cortex: contribution of the anterior insula to cognitive functions , 2017, Brain Structure and Function.
[9] Paolo Bartolomeo,et al. The phenomenology of endogenous orienting , 2007, Consciousness and Cognition.
[10] S. Luck,et al. Sources of attention-sensitive visual event-related potentials , 2005, Brain Topography.
[11] Donatella Spinelli,et al. Spatiotemporal brain mapping of spatial attention effects on pattern‐reversal ERPs , 2012, Human brain mapping.
[12] Gaspare Galati,et al. Hemispheric asymmetries in the transition from action preparation to execution , 2017, NeuroImage.
[13] Richard B Buxton,et al. Putting spatial attention on the map: timing and localization of stimulus selection processes in striate and extrastriate visual areas , 2001, Vision Research.
[14] M. Berchicci,et al. Beyond the “Bereitschaftspotential”: Action preparation behind cognitive functions , 2017, Neuroscience & Biobehavioral Reviews.
[15] Kenneth O. Johnson,et al. Synchrony: a neuronal mechanism for attentional selection? , 2002, Current Opinion in Neurobiology.
[16] T. Braver. The variable nature of cognitive control: a dual mechanisms framework , 2012, Trends in Cognitive Sciences.
[17] Hannah S. Locke,et al. Flexible neural mechanisms of cognitive control within human prefrontal cortex , 2009, Proceedings of the National Academy of Sciences.
[18] D. Lehmann,et al. Low resolution electromagnetic tomography: a new method for localizing electrical activity in the brain. , 1994, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[19] E. Vogel,et al. The visual N1 component as an index of a discrimination process. , 2000, Psychophysiology.
[20] A. Craig,et al. How do you feel — now? The anterior insula and human awareness , 2009, Nature Reviews Neuroscience.
[21] Antigona Martínez,et al. Source analysis of event-related cortical activity during visuo-spatial attention. , 2003, Cerebral cortex.
[22] Donatella Spinelli,et al. Benefits of Physical Exercise on Basic Visuo-Motor Functions Across Age , 2014, Front. Aging Neurosci..
[23] Nicholas Gaspelin,et al. How to get statistically significant effects in any ERP experiment (and why you shouldn't). , 2017, Psychophysiology.
[24] Leslie G. Ungerleider,et al. Mechanisms of visual attention in the human cortex. , 2000, Annual review of neuroscience.
[25] Steven A. Hillyard,et al. Identification of the neural sources of the pattern-reversal VEP , 2005, NeuroImage.
[26] M. Posner,et al. Attention and the detection of signals. , 1980, Journal of experimental psychology.
[27] F. Russo,et al. Exercise-related cognitive effects on sensory-motor control in athletes and drummers compared to non-athletes and other musicians , 2017, Neuroscience.
[28] V. Bianco,et al. The proactive self-control of actions: Time-course of underlying brain activities , 2017, NeuroImage.
[29] Helen J. Neville,et al. Attention to central and peripheral visual space in a movement detection task: an event-related potential and behavioral study. I. Normal hearing adults , 1987, Brain Research.
[30] A. Kleinschmidt,et al. Anterior insula activations in perceptual paradigms: often observed but barely understood , 2010, Brain Structure and Function.
[31] D. Spinelli,et al. Spatiotemporal analysis of the cortical sources of the steady‐state visual evoked potential , 2007, Human brain mapping.
[32] M. Posner,et al. Orienting of Attention* , 1980, The Quarterly journal of experimental psychology.
[33] T. Sejnowski,et al. Removal of eye activity artifacts from visual event-related potentials in normal and clinical subjects , 2000, Clinical Neurophysiology.
[34] C. Brunia. Movement and stimulus preceding negativity , 1988, Biological Psychology.
[35] Nicola Smania,et al. Visually evoked responses from the blind field of hemianopic patients , 2017, Neuropsychologia.
[36] S. Read,et al. Roles of the Different Sub-Regions of the Insular Cortex in Various Phases of the Decision-Making Process , 2015, Front. Behav. Neurosci..
[37] M. Corbetta,et al. Control of goal-directed and stimulus-driven attention in the brain , 2002, Nature Reviews Neuroscience.
[38] V. Menon,et al. Saliency, switching, attention and control: a network model of insula function , 2010, Brain Structure and Function.
[39] Donatella Spinelli,et al. Missing the Target: the Neural Processing Underlying the Omission Error , 2017, Brain Topography.
[40] Donatella Spinelli,et al. How the brain prevents a second error in a perceptual decision-making task , 2016, Scientific Reports.
[41] Giacomo Rizzolatti,et al. Premotor theory of attention , 2010, Scholarpedia.
[42] M. Falkenstein,et al. Effects of task complexity on ERP components in Go/Nogo tasks. , 2013, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[43] G. Woodman,et al. Event-related potential studies of attention , 2000, Trends in Cognitive Sciences.
[44] R. Knight,et al. Insights into Human Behavior from Lesions to the Prefrontal Cortex , 2014, Neuron.
[45] Rinaldo Livio Perri,et al. “Hit the missing stimulus”. A simultaneous EEG-fMRI study to localize the generators of endogenous ERPs in an omitted target paradigm , 2019, Scientific Reports.
[46] M. Hallett,et al. What is the Bereitschaftspotential? , 2006, Clinical Neurophysiology.
[47] Donatella Spinelli,et al. Spatiotemporal brain mapping during preparation, perception, and action , 2016, NeuroImage.
[48] Michael A. Pitts,et al. Still wanted: a reproducible demonstration of a genuine C1 attention effect , 2018, Cognitive neuroscience.
[49] F. Di Russo,et al. Immediate cortical adaptation in visual and non‐visual areas functions induced by monovision , 2018, The Journal of physiology.
[50] A. Aron. From Reactive to Proactive and Selective Control: Developing a Richer Model for Stopping Inappropriate Responses , 2011, Biological Psychiatry.
[51] Edward Awh,et al. The Role of Spatial Selective Attention in Working Memory for Locations: Evidence from Event-Related Potentials , 2000, Journal of Cognitive Neuroscience.
[52] T. Sejnowski,et al. Functionally Independent Components of the Late Positive Event-Related Potential during Visual Spatial Attention , 1999, The Journal of Neuroscience.
[53] Michael A. Pitts,et al. Does spatial attention modulate the earliest component of the visual evoked potential? , 2018, Cognitive neuroscience.
[54] Antígona Martínez,et al. Objects Are Highlighted by Spatial Attention , 2006, Journal of Cognitive Neuroscience.
[55] Donatella Spinelli,et al. Prefrontal hyperactivity in older people during motor planning , 2012, NeuroImage.
[56] H. Kornhuber,et al. Hirnpotentialänderungen bei Willkürbewegungen und passiven Bewegungen des Menschen: Bereitschaftspotential und reafferente Potentiale , 1965, Pflüger's Archiv für die gesamte Physiologie des Menschen und der Tiere.
[57] Klaas E. Stephan,et al. Visuospatial attention: how to measure effects of infrequent, unattended events in a blocked stimulus design , 2004, NeuroImage.
[58] G. Potts. An ERP index of task relevance evaluation of visual stimuli , 2004, Brain and Cognition.
[59] M. Dhamala,et al. The activity in the anterior insulae is modulated by perceptual decision-making difficulty , 2016, Neuroscience.
[60] G. V. Simpson,et al. Flow of activation from V1 to frontal cortex in humans , 2001, Experimental Brain Research.
[61] E. Macaluso,et al. Neural correlates of the spatial and expectancy components of endogenous and stimulus-driven orienting of attention in the Posner task. , 2010, Cerebral cortex.
[62] S J Luck,et al. Visual event-related potentials index focused attention within bilateral stimulus arrays. I. Evidence for early selection. , 1990, Electroencephalography and clinical neurophysiology.
[63] Francesco Di Russo,et al. Executive Functions and Performance Variability Measured by Event-Related Potentials to Understand the Neural Bases of Perceptual Decision-Making , 2017, Front. Hum. Neurosci..
[64] D. Spinelli,et al. Individual differences in response speed and accuracy are associated to specific brain activities of two interacting systems , 2014, Front. Behav. Neurosci..
[65] S. Hillyard,et al. Event-related brain potentials in the study of visual selective attention. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[66] C. Büchel,et al. Modulation of connectivity in visual pathways by attention: cortical interactions evaluated with structural equation modelling and fMRI. , 1997, Cerebral cortex.
[67] Donatella Spinelli,et al. Why do we make mistakes? Neurocognitive processes during the preparation–perception–action cycle and error-detection , 2015, NeuroImage.
[68] R D Pascual-Marqui,et al. Standardized low-resolution brain electromagnetic tomography (sLORETA): technical details. , 2002, Methods and findings in experimental and clinical pharmacology.
[69] Donatella Spinelli,et al. Awareness of perception and sensory–motor integration: ERPs from the anterior insula , 2018, Brain Structure and Function.
[70] M. Berchicci,et al. New insights into old waves. Matching stimulus- and response-locked ERPs on the same time-window , 2016, Biological Psychology.
[71] M Eimer,et al. Spatial cueing, sensory gating and selective response preparation: an ERP study on visuo-spatial orienting. , 1993, Electroencephalography and clinical neurophysiology.
[72] Leslie G. Ungerleider,et al. Increased Activity in Human Visual Cortex during Directed Attention in the Absence of Visual Stimulation , 1999, Neuron.
[73] S. Luck,et al. The role of attention in feature detection and conjunction discrimination: an electrophysiological analysis. , 1995, The International journal of neuroscience.
[74] S. Slotnick. Cluster success: fMRI inferences for spatial extent have acceptable false-positive rates , 2017, Cognitive neuroscience.
[75] Carlos M. Gómez,et al. Fronto-parietal networks activation during the contingent negative variation period , 2007, Brain Research Bulletin.
[76] Carlos M. Gómez,et al. Development of preparatory activity indexed by the contingent negative variation in children , 2009, Brain and Cognition.
[77] Jorge Leite,et al. Mind Wandering and Task-Focused Attention: ERP Correlates , 2018, Scientific Reports.
[78] A Kok,et al. Event-related potentials to conjunctions of spatial frequency and orientation as a function of stimulus parameters and response requirements. , 1993, Electroencephalography and clinical neurophysiology.
[79] R. Knight,et al. Prefrontal modulation of visual processing in humans , 2000, Nature Neuroscience.
[80] S. Hillyard,et al. Spatial Selective Attention Affects Early Extrastriate But Not Striate Components of the Visual Evoked Potential , 1996, Journal of Cognitive Neuroscience.
[81] Justin S. Feinstein,et al. Anterior insula reactivity during certain decisions is associated with neuroticism. , 2006, Social cognitive and affective neuroscience.