Neural oscillations track the maintenance and proceduralization of novel instructions
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Silvia Formica | Marcel Brass | Mehdi Senoussi | Carlos González-García | M. Brass | S. Formica | M. Senoussi | Carlos González-García
[1] E. Wascher,et al. On the neural mechanisms underlying the protective function of retroactive cuing against perceptual interference: Evidence by event-related potentials of the EEG , 2017, Biological Psychology.
[2] Gareth R Barnes,et al. Modulation of alpha and gamma oscillations related to retrospectively orienting attention within working memory , 2014, The European journal of neuroscience.
[3] Tom Verguts,et al. Binding by Random Bursts: A Computational Model of Cognitive Control , 2017, Journal of Cognitive Neuroscience.
[4] Timothy F. Brady,et al. Conceptual Distinctiveness Supports Detailed Visual Long-term Memory for Real-world Objects the Fidelity of Long-term Memory for Visual Information , 2022 .
[5] J. Lisman,et al. The Theta-Gamma Neural Code , 2013, Neuron.
[6] Marcel Brass,et al. The implementation of verbal instructions: Dissociating motor preparation from the formation of stimulus–response associations , 2012, NeuroImage.
[7] Rufin van Rullen,et al. Theta-Gamma Coding Meets Communication-through-Coherence: Neuronal Oscillatory Multiplexing Theories Reconciled , 2016, PLoS Comput. Biol..
[8] E. Wascher,et al. The time course of visuo-spatial working memory updating revealed by a retro-cuing paradigm , 2016, Scientific Reports.
[9] T. Womelsdorf,et al. Human Neuroscience , 2022 .
[10] R. Oostenveld,et al. Nonparametric statistical testing of EEG- and MEG-data , 2007, Journal of Neuroscience Methods.
[11] P. Fries. Rhythms for Cognition: Communication through Coherence , 2015, Neuron.
[12] H. Jasper,et al. The ten-twenty electrode system of the International Federation. The International Federation of Clinical Neurophysiology. , 1999, Electroencephalography and clinical neurophysiology. Supplement.
[13] P. Fries. A mechanism for cognitive dynamics: neuronal communication through neuronal coherence , 2005, Trends in Cognitive Sciences.
[14] R. Hari,et al. Human cortical oscillations: a neuromagnetic view through the skull , 1997, Trends in Neurosciences.
[15] Joram van Driel,et al. Priority Switches in Visual Working Memory are Supported by Frontal Delta and Posterior Alpha Interactions , 2018, Cerebral cortex.
[16] Peter Manza,et al. Alpha Power Gates Relevant Information during Working Memory Updating , 2014, The Journal of Neuroscience.
[17] Robert T. Knight,et al. Parameterizing neural power spectra , 2018, bioRxiv.
[18] Sammi R. Chekroud,et al. Concurrent visual and motor selection during visual working memory guided action , 2018, Nature Neuroscience.
[19] Michael X Cohen,et al. Analyzing Neural Time Series Data: Theory and Practice , 2014 .
[20] Á. Pascual-Leone,et al. α-Band Electroencephalographic Activity over Occipital Cortex Indexes Visuospatial Attention Bias and Predicts Visual Target Detection , 2006, The Journal of Neuroscience.
[21] Manuel Schabus,et al. A shift of visual spatial attention is selectively associated with human EEG alpha activity , 2005, The European journal of neuroscience.
[22] Christoph M. Michel,et al. A bias for posterior α-band power suppression versus enhancement during shifting versus maintenance of spatial attention , 2009, NeuroImage.
[23] P. Roelfsema,et al. Different States in Visual Working Memory: When It Guides Attention and When It Does Not , 2022 .
[24] Daniel J Mitchell,et al. Neural Coding for Instruction‐Based Task Sets in Human Frontoparietal and Visual Cortex , 2016, Cerebral cortex.
[25] Martin Wiener,et al. An Intrinsic Role of Beta Oscillations in Memory for Time Estimation , 2018, Scientific Reports.
[26] Philippe Kahane,et al. From intentions to actions: Neural oscillations encode motor processes through phase, amplitude and phase-amplitude coupling , 2017, NeuroImage.
[27] Robert Oostenveld,et al. FieldTrip: Open Source Software for Advanced Analysis of MEG, EEG, and Invasive Electrophysiological Data , 2010, Comput. Intell. Neurosci..
[28] D. Cheyne. MEG studies of sensorimotor rhythms: A review , 2013, Experimental Neurology.
[29] Anna Christina Nobre,et al. Behavioral and Neural Markers of Flexible Attention over Working Memory in Aging , 2016, Cerebral cortex.
[30] Timothy F. Brady,et al. Real-world objects are not represented as bound units: independent forgetting of different object details from visual memory. , 2013, Journal of experimental psychology. General.
[31] M. Frank,et al. Frontal theta as a mechanism for cognitive control , 2014, Trends in Cognitive Sciences.
[32] Olaf Blanke,et al. Quantifying the role of motor imagery in brain-machine interfaces , 2016, Scientific Reports.
[33] G. Pfurtscheller,et al. Event-related dynamics of cortical rhythms: frequency-specific features and functional correlates. , 2001, International journal of psychophysiology : official journal of the International Organization of Psychophysiology.
[34] Dorit Wenke,et al. Strategic influences on implementing instructions for future actions , 2009, Psychological research.
[35] W Singer,et al. Role of the temporal domain for response selection and perceptual binding. , 1997, Cerebral cortex.
[36] Michael W. Cole,et al. The power of instructions: Proactive configuration of stimulus-response translation. , 2015, Journal of experimental psychology. Learning, memory, and cognition.
[37] J. Duncan,et al. Intelligence and the Frontal Lobe: The Organization of Goal-Directed Behavior , 1996, Cognitive Psychology.
[38] M. Brass,et al. It wasn’t me! Motor activation from irrelevant spatial information in the absence of a response , 2015, Front. Hum. Neurosci..
[39] Daniel Schneider,et al. On the contribution of motor planning to the retroactive cuing benefit in working memory: Evidence by mu and beta oscillatory activity in the EEG , 2017, NeuroImage.
[40] Silvia Formica,et al. Frontoparietal action-oriented codes support novel instruction implementation , 2019, NeuroImage.
[41] J. de Houwer,et al. Instruction-based task-rule congruency effects. , 2012, Journal of experimental psychology. Learning, memory, and cognition.
[42] M. Eimer,et al. On the difference between working memory and attentional set , 2011, Neuropsychologia.
[43] Alessandra S. Souza,et al. In search of the focus of attention in working memory: 13 years of the retro-cue effect , 2016, Attention, perception & psychophysics.
[44] Michael X. Cohen,et al. Midfrontal conflict-related theta-band power reflects neural oscillations that predict behavior. , 2013, Journal of neurophysiology.
[45] A. Capilla,et al. Suppression of no-longer relevant information in Working Memory: An alpha-power related mechanism? , 2018, Biological Psychology.
[46] Michael W. Cole,et al. Prefrontal Dynamics Underlying Rapid Instructed Task Learning Reverse with Practice , 2010, The Journal of Neuroscience.
[47] Michael W. Cole,et al. Reflexive activation of newly instructed stimulus–response rules: evidence from lateralized readiness potentials in no-go trials , 2015, Cognitive, affective & behavioral neuroscience.
[48] Javier Ramírez,et al. Encoding, preparation and implementation of novel complex verbal instructions , 2017, NeuroImage.
[49] Arnaud Delorme,et al. EEGLAB: an open source toolbox for analysis of single-trial EEG dynamics including independent component analysis , 2004, Journal of Neuroscience Methods.
[50] Gregory A. Miller,et al. Cross-frequency interactions between frontal theta and posterior alpha control mechanisms foster working memory , 2018, NeuroImage.
[51] Baptist Liefooghe,et al. Automatic motor activation by mere instruction , 2014, Cognitive, Affective, & Behavioral Neuroscience.
[52] O. Jensen,et al. Alpha Oscillations Serve to Protect Working Memory Maintenance against Anticipated Distracters , 2012, Current Biology.
[53] John Duncan,et al. Goal neglect and knowledge chunking in the construction of novel behaviour☆ , 2014, Cognition.
[54] G. Pfurtscheller,et al. Motor imagery activates primary sensorimotor area in humans , 1997, Neuroscience Letters.
[55] Christian N. L. Olivers,et al. Oscillatory Control over Representational States in Working Memory , 2019, Trends in Cognitive Sciences.
[56] Marcel Brass,et al. There is more into ‘doing’ than ‘knowing’: The function of the right inferior frontal sulcus is specific for implementing versus memorising verbal instructions , 2016, NeuroImage.
[57] Katherine Guérard,et al. Bank of Standardized Stimuli (BOSS) Phase II: 930 New Normative Photos , 2014, PloS one.
[58] T. Verguts,et al. Theta oscillations shift towards optimal frequency for cognitive control , 2020, Nature Human Behaviour.
[59] F. van Ede. Visual working memory and action: Functional links and bi-directional influences , 2020, Visual cognition.
[60] Marta Kutas,et al. Identifying reliable independent components via split-half comparisons , 2009, NeuroImage.
[61] P. Wojtkowski. Temporal Dynamics , 2017, Encyclopedia of GIS.
[62] Andrew J. Watrous,et al. Functionally distinct high and low theta oscillations in the human hippocampus , 2018, bioRxiv.
[63] A dual mechanism underlying alpha lateralization in attentional orienting to mental representation , 2017, Biological Psychology.
[64] James F. Cavanagh,et al. Frontal theta predicts specific cognitive control-induced behavioural changes beyond general reaction time slowing , 2019, NeuroImage.
[65] Jason M. Scimeca,et al. Causal Evidence for a Role of Theta and Alpha Oscillations in the Control of Working Memory , 2020, Current Biology.
[66] Hannes Ruge,et al. Rapid formation of pragmatic rule representations in the human brain during instruction-based learning. , 2010, Cerebral cortex.
[67] J. Gross,et al. A New Unifying Account of the Roles of Neuronal Entrainment , 2019, Current Biology.
[68] Mark W. Woolrich,et al. Frontoparietal and Cingulo-opercular Networks Play Dissociable Roles in Control of Working Memory , 2015, Journal of Cognitive Neuroscience.
[69] Stephen D. Hall,et al. Transient Alpha and Beta Synchrony Underlies Preparatory Recruitment of Directional Motor Networks , 2018, Journal of Cognitive Neuroscience.
[70] B. Milner. Effects of Different Brain Lesions on Card Sorting: The Role of the Frontal Lobes , 1963 .
[71] M. Brass,et al. Attentional prioritization reconfigures novel instructions into action-oriented task sets , 2020, Cognition.
[72] Nicholas E. Myers,et al. Temporal Dynamics of Attention during Encoding versus Maintenance of Working Memory: Complementary Views from Event-related Potentials and Alpha-band Oscillations , 2015, Journal of Cognitive Neuroscience.
[73] María Ruz,et al. Transient and Sustained Control Mechanisms Supporting Novel Instructed Behavior. , 2018, Cerebral cortex.
[74] Roshan Cools,et al. Region-specific modulations in oscillatory alpha activity serve to facilitate processing in the visual and auditory modalities , 2014, NeuroImage.
[75] A. Nobre,et al. Prioritizing Information during Working Memory: Beyond Sustained Internal Attention , 2017, Trends in Cognitive Sciences.
[76] Giuseppe Pellizzer,et al. Brain oscillatory activity during motor preparation: effect of directional uncertainty on beta, but not alpha, frequency band , 2015, Front. Neurosci..
[77] A. Nobre,et al. Indexing the graded allocation of visuospatial attention using anticipatory alpha oscillations , 2011, Journal of neurophysiology.
[78] M. Brass,et al. The implementation of verbal instructions: An fMRI study , 2011, Human brain mapping.
[79] Senne Braem,et al. Following new task instructions: Evidence for a dissociation between knowing and doing , 2017, Neuroscience & Biobehavioral Reviews.
[80] John Duncan,et al. Assembly and Use of New Task Rules in Fronto-parietal Cortex , 2011, Journal of Cognitive Neuroscience.
[81] Francesco Lacquaniti,et al. Ocular tracking of occluded ballistic trajectories: Effects of visual context and of target law of motion. , 2019, Journal of vision.
[82] Pieter Verbeke,et al. Learning to synchronize: How biological agents can couple neural task modules for dealing with the stability-plasticity dilemma , 2018, bioRxiv.
[83] Clemens Brunner,et al. Mu rhythm (de)synchronization and EEG single-trial classification of different motor imagery tasks , 2006, NeuroImage.
[84] W. Klimesch,et al. EEG alpha oscillations: The inhibition–timing hypothesis , 2007, Brain Research Reviews.
[85] P. Schyns,et al. Rhythmic TMS Causes Local Entrainment of Natural Oscillatory Signatures , 2011, Current Biology.
[86] Marcel Brass,et al. Neural Correlates of Overcoming Interference from Instructed and Implemented Stimulus–Response Associations , 2009, The Journal of Neuroscience.
[87] Dejan Draschkow,et al. Cluster-based permutation tests of MEG/EEG data do not establish significance of effect latency or location. , 2019, Psychophysiology.
[88] Jan R. Wessel,et al. Frontal theta is a signature of successful working memory manipulation , 2012, Experimental Brain Research.
[89] J. Lisman,et al. Oscillations in the alpha band (9-12 Hz) increase with memory load during retention in a short-term memory task. , 2002, Cerebral cortex.
[90] Luiz Pessoa,et al. Representational organization of novel task sets during proactive encoding , 2019 .
[91] Anna C. Nobre,et al. Anticipated moments: temporal structure in attention , 2017, Nature Reviews Neuroscience.
[92] G. Thut,et al. Mechanisms of selective inhibition in visual spatial attention are indexed by α‐band EEG synchronization , 2007, The European journal of neuroscience.
[93] J. Schoffelen,et al. Prestimulus Oscillatory Activity in the Alpha Band Predicts Visual Discrimination Ability , 2008, The Journal of Neuroscience.
[94] Nicholas E. Myers,et al. Revealing hidden states in visual working memory using electroencephalography , 2015, Front. Syst. Neurosci..
[95] J. Schoffelen,et al. Dissociated α-band modulations in the dorsal and ventral visual pathways in visuospatial attention and perception. , 2014, Cerebral cortex.
[96] M. Brass,et al. The effects of declaratively maintaining and proactively proceduralizing novel stimulus-response mappings , 2020, Cognition.
[97] F. Perrin,et al. Spherical splines for scalp potential and current density mapping. , 1989, Electroencephalography and clinical neurophysiology.
[98] Keisuke Fukuda,et al. α Power Modulation and Event-Related Slow Wave Provide Dissociable Correlates of Visual Working Memory , 2015, The Journal of Neuroscience.
[99] Senne Braem,et al. Encoding of Novel Verbal Instructions for Prospective Action in the Lateral Prefrontal Cortex: Evidence from Univariate and Multivariate Functional Magnetic Resonance Imaging Analysis , 2018, Journal of Cognitive Neuroscience.
[100] John J. Foxe,et al. The functional role of alpha-band activity in attentional processing: the current zeitgeist and future outlook. , 2019, Current opinion in psychology.
[101] Christian N. L. Olivers,et al. Decoding the status of working memory representations in preparation of visual selection , 2019, NeuroImage.
[102] G. Griffin,et al. Caltech-256 Object Category Dataset , 2007 .
[103] Ovidiu Lungu,et al. Consolidation alters motor sequence-specific distributed representations , 2018, bioRxiv.
[104] Michael W. Cole,et al. Rapid instructed task learning: A new window into the human brain’s unique capacity for flexible cognitive control , 2013, Cognitive, affective & behavioral neuroscience.
[105] Sebastiaan Overeem,et al. Expectancy Induces Dynamic Modulation of Corticospinal Excitability , 2007, Journal of Cognitive Neuroscience.
[106] W. Walter,et al. Contingent Negative Variation : An Electric Sign of Sensori-Motor Association and Expectancy in the Human Brain , 1964, Nature.
[107] J. Pineda. The functional significance of mu rhythms: Translating “seeing” and “hearing” into “doing” , 2005, Brain Research Reviews.
[108] J. Wolpaw,et al. Mu and Beta Rhythm Topographies During Motor Imagery and Actual Movements , 2004, Brain Topography.
[109] O. Jensen,et al. Shaping Functional Architecture by Oscillatory Alpha Activity: Gating by Inhibition , 2010, Front. Hum. Neurosci..
[110] A. Nobre,et al. Alpha Oscillations Related to Anticipatory Attention Follow Temporal Expectations , 2011, The Journal of Neuroscience.
[111] Arnaud Delorme,et al. Frontal midline EEG dynamics during working memory , 2005, NeuroImage.
[112] Elkan G. Akyürek,et al. Dynamic hidden states underlying working memory guided behaviour , 2017, Nature Neuroscience.