Robust enhancement of motor sequence learning with 4 mA transcranial electric stimulation
暂无分享,去创建一个
L. Parra | L. Cohen | A. Shereen | G. Hsu
[1] S. Bestmann,et al. Inter-individual variability in current direction for common tDCS montages , 2022, NeuroImage.
[2] J. Doyon,et al. Brain-spinal cord interaction in long-term motor sequence learning in human: An fMRI study , 2022, NeuroImage.
[3] Tie-Qiang Li,et al. Estimated gray matter volume rapidly changes after a short motor task , 2022, Cerebral cortex.
[4] L. Parra,et al. Weak DCS causes a relatively strong cumulative boost of synaptic plasticity with spaced learning , 2021, Brain Stimulation.
[5] Alexia Bourgeois,et al. The neural correlates of intermanual transfer , 2021, NeuroImage.
[6] L. Parra,et al. Cutaneous sensation of electrical stimulation waveforms , 2021, Brain Stimulation.
[7] R. Quentin,et al. Consolidation of human skill linked to waking hippocampo-neocortical replay , 2021, bioRxiv.
[8] Hysell V. Oviedo,et al. Effects of direct current stimulation on synaptic plasticity in a single neuron , 2021, Brain Stimulation.
[9] D. Zeller,et al. No Impact of Cerebellar Anodal Transcranial Direct Current Stimulation at Three Different Timings on Motor Learning in a Sequential Finger-Tapping Task , 2021, Frontiers in Human Neuroscience.
[10] G. Schlaug,et al. Effects of tDCS dose and electrode montage on regional cerebral blood flow and motor behavior , 2021, NeuroImage.
[11] F. Fröhlich,et al. Pinging the brain with transcranial magnetic stimulation reveals cortical reactivity in time and space , 2019, Brain Stimulation.
[12] OUP accepted manuscript , 2021, Cerebral Cortex.
[13] T. Rudroff,et al. Women report more severe sensations from 2 mA and 4 mA transcranial direct current stimulation than men , 2020, The European journal of neuroscience.
[14] M. Nitsche,et al. Determination of anodal tDCS intensity threshold for reversal of corticospinal excitability: an investigation for induction of counter-regulatory mechanisms , 2020, Scientific Reports.
[15] Hartwig R. Siebner,et al. Beneficial effects of cerebellar tDCS on motor learning are associated with altered putamen-cerebellar connectivity: A simultaneous tDCS-fMRI study , 2020, NeuroImage.
[16] T. Rudroff,et al. Different Effects of 2 mA and 4 mA Transcranial Direct Current Stimulation on Muscle Activity and Torque in a Maximal Isokinetic Fatigue Task , 2020, Frontiers in Human Neuroscience.
[17] M. Bikson,et al. Adaptive current tDCS up to 4 mA , 2020, Brain Stimulation.
[18] L. Parra,et al. Optimization of interferential stimulation of the human brain with electrode arrays , 2020, Journal of neural engineering.
[19] Mahima Sharma,et al. Direct current stimulation boosts hebbian plasticity in vitro , 2019, Brain Stimulation.
[20] M. M. Samani,et al. Titrating the neuroplastic effects of cathodal transcranial direct current stimulation (tDCS) over the primary motor cortex , 2019, Cortex.
[21] Stefan Brodoehl,et al. The importance of different learning stages for motor sequence learning after stroke , 2019, Human brain mapping.
[22] Oliver Kraff,et al. Cerebellar transcranial direct current stimulation modulates the fMRI signal in the cerebellar nuclei in a simple motor task , 2019, Brain Stimulation.
[23] L. Cohen,et al. A Rapid Form of Offline Consolidation in Skill Learning , 2019, Current Biology.
[24] Abhishek Datta,et al. Automatic M1‐SO Montage Headgear for Transcranial Direct Current Stimulation (TDCS) Suitable for Home and High‐Throughput In‐Clinic Applications , 2019, Neuromodulation : journal of the International Neuromodulation Society.
[25] Marom Bikson,et al. Tolerability and blinding of 4x1 high-definition transcranial direct current stimulation (HD-tDCS) at two and three milliamps , 2018, Brain Stimulation.
[26] Charlotte J Stagg,et al. The dynamics of cortical GABA in human motor learning , 2018, bioRxiv.
[27] Sven Bestmann,et al. Incomplete evidence that increasing current intensity of tDCS boosts outcomes , 2018, Brain Stimulation.
[28] Lucas C. Parra,et al. Realistic volumetric-approach to simulate transcranial electric stimulation—ROAST—a fully automated open-source pipeline , 2017, bioRxiv.
[29] Lucas C. Parra,et al. Direct Current Stimulation Modulates LTP and LTD: Activity Dependence and Dendritic Effects , 2017, Brain Stimulation.
[30] Ludovica Labruna,et al. Systematic evaluation of the impact of stimulation intensity on neuroplastic after‐effects induced by transcranial direct current stimulation , 2017, The Journal of physiology.
[31] L. Parra,et al. Measurements and models of electric fields in the in vivo human brain during transcranial electric stimulation , 2017, Brain Stimulation.
[32] Ethan R. Buch,et al. Effects of tDCS on motor learning and memory formation: A consensus and critical position paper , 2016, Clinical Neurophysiology.
[33] Paul Sauseng,et al. The Importance of Sample Size for Reproducibility of tDCS Effects , 2016, Front. Hum. Neurosci..
[34] M. Nitsche,et al. Safety of Transcranial Direct Current Stimulation: Evidence Based Update 2016 , 2016, Brain Stimulation.
[35] Á. Pascual-Leone,et al. Direct current stimulation induces mGluR5‐dependent neocortical plasticity , 2016, Annals of neurology.
[36] Marco Steinhauser,et al. Safety, Tolerability, Blinding Efficacy and Behavioural Effects of a Novel MRI-Compatible, High-Definition tDCS Set-Up , 2016, Brain Stimulation.
[37] A. Antal,et al. Monitoring transcranial direct current stimulation induced changes in cortical excitability during the serial reaction time task , 2016, Neuroscience Letters.
[38] C. Colussi,et al. Anodal transcranial direct current stimulation boosts synaptic plasticity and memory in mice via epigenetic regulation of Bdnf expression , 2016, Scientific Reports.
[39] Julien Doyon,et al. Anodal transcranial direct current stimulation enhances the effects of motor imagery training in a finger tapping task , 2016, The European journal of neuroscience.
[40] D F Stegeman,et al. Generalization and transfer of contextual cues in motor learning. , 2015, Journal of neurophysiology.
[41] Julien Cohen-Adad,et al. Simultaneous Brain–Cervical Cord fMRI Reveals Intrinsic Spinal Cord Plasticity during Motor Sequence Learning , 2015, PLoS biology.
[42] M. Sale,et al. Intermanual transfer and bilateral cortical plasticity is maintained in older adults after skilled motor training with simple and complex tasks , 2015, Front. Aging Neurosci..
[43] Ashesh K Dhawale,et al. Motor Cortex Is Required for Learning but Not for Executing a Motor Skill , 2015, Neuron.
[44] Heidi Johansen-Berg,et al. Gray matter volume is associated with rate of subsequent skill learning after a long term training intervention , 2014, NeuroImage.
[45] Eugene Poh,et al. New visuomotor maps are immediately available to the opposite limb. , 2014, Journal of neurophysiology.
[46] Yu Huang,et al. Targeted transcranial direct current stimulation for rehabilitation after stroke , 2013, NeuroImage.
[47] Nicole Wenderoth,et al. Task-Specific Effect of Transcranial Direct Current Stimulation on Motor Learning , 2013, Front. Hum. Neurosci..
[48] Louise Marston,et al. Rethinking Clinical Trials of Transcranial Direct Current Stimulation: Participant and Assessor Blinding Is Inadequate at Intensities of 2mA , 2012, PloS one.
[49] Jeffrey N. Rouder,et al. Default Bayes factors for ANOVA designs , 2012 .
[50] Dov Sagi,et al. Common mechanisms of human perceptual and motor learning , 2012, Nature Reviews Neuroscience.
[51] V. Di Lazzaro,et al. Modulation of LTP at rat hippocampal CA3-CA1 synapses by direct current stimulation. , 2012, Journal of neurophysiology.
[52] V. Penhune,et al. Author's Personal Copy Behavioural Brain Research Parallel Contributions of Cerebellar, Striatal and M1 Mechanisms to Motor Sequence Learning , 2022 .
[53] S. Reeves,et al. A pilot study of the tolerability and effects of high-definition transcranial direct current stimulation (HD-tDCS) on pain perception. , 2011, The journal of pain : official journal of the American Pain Society.
[54] L. Cohen,et al. Neuroplasticity Subserving Motor Skill Learning , 2011, Neuron.
[55] L. Parra,et al. Optimized multi-electrode stimulation increases focality and intensity at target , 2011, Journal of neural engineering.
[56] P. Matthews,et al. Polarity and timing-dependent effects of transcranial direct current stimulation in explicit motor learning , 2011, Neuropsychologia.
[57] H. Johansen-Berg,et al. The Role of GABA in Human Motor Learning , 2011, Current Biology.
[58] Heidi Johansen-Berg,et al. Structural and functional bases for individual differences in motor learning , 2011, Human brain mapping.
[59] M. Nitsche,et al. Physiological Basis of Transcranial Direct Current Stimulation , 2011, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[60] Heidi M. Schambra,et al. Direct Current Stimulation Promotes BDNF-Dependent Synaptic Plasticity: Potential Implications for Motor Learning , 2010, Neuron.
[61] M. Filippi,et al. Motor Learning in Healthy Humans Is Associated to Gray Matter Changes: A Tensor-Based Morphometry Study , 2010, PloS one.
[62] E. Erdfelder,et al. Statistical power analyses using G*Power 3.1: Tests for correlation and regression analyses , 2009, Behavior research methods.
[63] M. Bikson,et al. Role of cortical cell type and morphology in subthreshold and suprathreshold uniform electric field stimulation in vitro , 2009, Brain Stimulation.
[64] D. Reato,et al. Gyri-precise head model of transcranial direct current stimulation: Improved spatial focality using a ring electrode versus conventional rectangular pad , 2009, Brain Stimulation.
[65] P. Celnik,et al. Modulation of Cerebellar Excitability by Polarity-Specific Noninvasive Direct Current Stimulation , 2009, The Journal of Neuroscience.
[66] J. Doyon,et al. Contributions of the basal ganglia and functionally related brain structures to motor learning , 2009, Behavioural Brain Research.
[67] Gottfried Schlaug,et al. Dual-hemisphere tDCS facilitates greater improvements for healthy subjects' non-dominant hand compared to uni-hemisphere stimulation , 2008, BMC Neuroscience.
[68] Anders M. Dale,et al. An automated labeling system for subdividing the human cerebral cortex on MRI scans into gyral based regions of interest , 2006, NeuroImage.
[69] L. Cohen,et al. Transcranial DC stimulation (tDCS): A tool for double-blind sham-controlled clinical studies in brain stimulation , 2006, Clinical Neurophysiology.
[70] P. Matthews,et al. Rapid modulation of GABA concentration in human sensorimotor cortex during motor learning. , 2006, Journal of neurophysiology.
[71] Julien Doyon,et al. Cerebellum and M1 interaction during early learning of timed motor sequences , 2005, NeuroImage.
[72] J. Doyon,et al. Reorganization and plasticity in the adult brain during learning of motor skills , 2005, Current Opinion in Neurobiology.
[73] Daniel R. Merrill,et al. Electrical stimulation of excitable tissue: design of efficacious and safe protocols , 2005, Journal of Neuroscience Methods.
[74] G. Teskey,et al. Skilled-learning-induced potentiation in rat sensorimotor cortex: a transient form of behavioural long-term potentiation , 2004, Neuroscience.
[75] J. Jefferys,et al. Effects of uniform extracellular DC electric fields on excitability in rat hippocampal slices in vitro , 2004, The Journal of physiology.
[76] Gary Kamen,et al. Hemispheric differences in the relationship between corticomotor excitability changes following a fine-motor task and motor learning. , 2004, Journal of neurophysiology.
[77] D. Ruge,et al. Learning Modifies Subsequent Induction of Long-Term Potentiation-Like and Long-Term Depression-Like Plasticity in Human Motor Cortex , 2004, The Journal of Neuroscience.
[78] C. Carter,et al. Regional brain activation during concurrent implicit and explicit sequence learning. , 2004, Cerebral cortex.
[79] Bogdan Draganski,et al. Neuroplasticity: Changes in grey matter induced by training , 2004, Nature.
[80] Nikos Makris,et al. Automatically parcellating the human cerebral cortex. , 2004, Cerebral cortex.
[81] Leslie G. Ungerleider,et al. Distinct contribution of the cortico-striatal and cortico-cerebellar systems to motor skill learning , 2003, Neuropsychologia.
[82] G. Schlaug,et al. Brain Structures Differ between Musicians and Non-Musicians , 2003, The Journal of Neuroscience.
[83] M. Nitsche,et al. Facilitation of Implicit Motor Learning by Weak Transcranial Direct Current Stimulation of the Primary Motor Cortex in the Human , 2003, Journal of Cognitive Neuroscience.
[84] R. Stickgold,et al. Practice with Sleep Makes Perfect Sleep-Dependent Motor Skill Learning , 2002, Neuron.
[85] R. Sainburg,et al. Interlimb transfer of visuomotor rotations: independence of direction and final position information , 2002, Experimental Brain Research.
[86] Kae Nakamura,et al. Central mechanisms of motor skill learning , 2002, Current Opinion in Neurobiology.
[87] M. Hallett,et al. Early consolidation in human primary motor cortex , 2002, Nature.
[88] Leslie G. Ungerleider,et al. Functional anatomy of motor skill learning. , 2002 .
[89] M. Nitsche,et al. Sustained excitability elevations induced by transcranial DC motor cortex stimulation in humans , 2001, Neurology.
[90] M. Nitsche,et al. Excitability changes induced in the human motor cortex by weak transcranial direct current stimulation , 2000, The Journal of physiology.
[91] M. Hallett,et al. Dynamic cortical involvement in implicit and explicit motor sequence learning. A PET study. , 1998, Brain : a journal of neurology.
[92] J. Donoghue,et al. Strengthening of horizontal cortical connections following skill learning , 1998, Nature Neuroscience.
[93] Leslie G. Ungerleider,et al. The acquisition of skilled motor performance: fast and slow experience-driven changes in primary motor cortex. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[94] E Bizzi,et al. Motor learning by field approximation. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[95] Leslie G. Ungerleider,et al. Functional MRI evidence for adult motor cortex plasticity during motor skill learning , 1995, Nature.
[96] M. Hallett,et al. Modulation of cortical motor output maps during development of implicit and explicit knowledge. , 1994, Science.
[97] S. Stone-Elander,et al. Motor learning in man: a positron emission tomographic study. , 1990, Neuroreport.
[98] O. Lippold,et al. Prolonged changes in excitability of pyramidal tract neurones in the cat: a post‐synaptic mechanism. , 1979, The Journal of physiology.