Dopamine-dependent scaling of subthalamic gamma bursts with movement velocity in patients with Parkinson’s disease
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G. Schneider | J. Krauss | A. Horn | W. Neumann | A. Kühn | J. Huebl | A. Bock | R. Lofredi | S. Siegert
[1] G. E. Alexander,et al. Functional architecture of basal ganglia circuits: neural substrates of parallel processing , 1990, Trends in Neurosciences.
[2] R. Lesser,et al. Functional mapping of human sensorimotor cortex with electrocorticographic spectral analysis. I. Alpha and beta event-related desynchronization. , 1998, Brain : a journal of neurology.
[3] R. J. Allan,et al. Neurophysiological identification of the subthalamic nucleus in surgery for Parkinson's disease , 1998, Annals of neurology.
[4] K. Mewes,et al. The subthalamic nucleus in Parkinson's disease: somatotopic organization and physiological characteristics. , 2001, Brain : a journal of neurology.
[5] Bijan Pesaran,et al. Temporal structure in neuronal activity during working memory in macaque parietal cortex , 2000, Nature Neuroscience.
[6] A. Graybiel,et al. Synchronous, Focally Modulated β-Band Oscillations Characterize Local Field Potential Activity in the Striatum of Awake Behaving Monkeys , 2003, The Journal of Neuroscience.
[7] Peter Brown,et al. Behavioural cues are associated with modulations of synchronous oscillations in the human subthalamic nucleus. , 2003, Brain : a journal of neurology.
[8] Scott T. Grafton,et al. Basal ganglia network mediates the control of movement amplitude , 2003, Experimental Brain Research.
[9] A. Oliviero,et al. Patterning of globus pallidus local field potentials differs between Parkinson's disease and dystonia. , 2003, Brain : a journal of neurology.
[10] J. Bolam. Faculty Opinions recommendation of Synchronous, focally modulated beta-band oscillations characterize local field potential activity in the striatum of awake behaving monkeys. , 2004 .
[11] Andrea A. Kühn,et al. The relationship between local field potential and neuronal discharge in the subthalamic nucleus of patients with Parkinson's disease , 2005, Experimental Neurology.
[12] I. Fried,et al. Coupling Between Neuronal Firing, Field Potentials, and fMRI in Human Auditory Cortex , 2005, Science.
[13] P. Brown,et al. Frequency dependent effects of subthalamic nucleus stimulation in Parkinson's disease , 2005, Neuroscience Letters.
[14] Peter Brown,et al. Intra-operative recordings of local field potentials can help localize the subthalamic nucleus in Parkinson's disease surgery , 2006, Experimental Neurology.
[15] G. Deuschl,et al. A randomized trial of deep-brain stimulation for Parkinson's disease. , 2006, The New England journal of medicine.
[16] P. Brown,et al. Reduction in subthalamic 8–35 Hz oscillatory activity correlates with clinical improvement in Parkinson's disease , 2006, The European journal of neuroscience.
[17] Vladimir Litvak,et al. Excessive synchronization of basal ganglia neurons at 20 Hz slows movement in Parkinson's disease , 2007, Experimental Neurology.
[18] John Ashburner,et al. A fast diffeomorphic image registration algorithm , 2007, NeuroImage.
[19] W. Singer,et al. The gamma cycle , 2007, Trends in Neurosciences.
[20] Peter Brown,et al. Dopaminergic therapy promotes lateralized motor activity in the subthalamic area in Parkinson's disease. , 2007, Brain : a journal of neurology.
[21] E. Jones. Stereotactic Atlas of the Human Thalamus and Basal Ganglia, A. Morel. Informa Healthcare, New York (2007), Price: US$ 229.95 , 2008 .
[22] Peter Brown,et al. Effects of low-frequency stimulation of the subthalamic nucleus on movement in Parkinson's disease , 2007, Experimental Neurology.
[23] Arthur Gretton,et al. Inferring spike trains from local field potentials. , 2008, Journal of neurophysiology.
[24] C. Hass,et al. Brain penetration effects of microelectrodes and DBS leads in STN or GPi , 2009, Journal of Neurology, Neurosurgery, and Psychiatry.
[25] Andrea A. Kühn,et al. Pathological synchronisation in the subthalamic nucleus of patients with Parkinson's disease relates to both bradykinesia and rigidity , 2009, Experimental Neurology.
[26] P. Brown,et al. Gamma activity and reactivity in human thalamic local field potentials , 2009, The European journal of neuroscience.
[27] Jeremy R. Manning,et al. Broadband Shifts in Local Field Potential Power Spectra Are Correlated with Single-Neuron Spiking in Humans , 2009, The Journal of Neuroscience.
[28] Guy M McKhann,et al. Regulation of parkinsonian motor behaviors by optogenetic control of Basal Ganglia circuitry. , 2010, Neurosurgery.
[29] M. Desmurget,et al. Basal ganglia contributions to motor control: a vigorous tutor , 2010, Current Opinion in Neurobiology.
[30] P. Brown,et al. Deep brain stimulation can suppress pathological synchronisation in parkinsonian patients , 2010, Journal of Neurology, Neurosurgery & Psychiatry.
[31] Anatol C. Kreitzer,et al. Regulation of parkinsonian motor behaviours by optogenetic control of basal ganglia circuitry , 2010, Nature.
[32] Robert Oostenveld,et al. FieldTrip: Open Source Software for Advanced Analysis of MEG, EEG, and Invasive Electrophysiological Data , 2010, Comput. Intell. Neurosci..
[33] Karl J. Friston,et al. EEG and MEG Data Analysis in SPM8 , 2011, Comput. Intell. Neurosci..
[34] Karl J. Friston,et al. Resting oscillatory cortico-subthalamic connectivity in patients with Parkinson's disease. , 2011, Brain : a journal of neurology.
[35] Scott T. Grafton,et al. Human Basal Ganglia and the Dynamic Control of Force during On-Line Corrections , 2011, The Journal of Neuroscience.
[36] Markus Butz,et al. Distinct oscillatory STN-cortical loops revealed by simultaneous MEG and local field potential recordings in patients with Parkinson's disease , 2011, NeuroImage.
[37] G. Buzsáki,et al. Mechanisms of gamma oscillations. , 2012, Annual review of neuroscience.
[38] A. Lozano,et al. Subthalamic deep brain stimulation at individualized frequencies for Parkinson disease , 2012, Neurology.
[39] Alexander L Green,et al. Subthalamic nucleus activity optimizes maximal effort motor responses in Parkinson's disease. , 2012, Brain : a journal of neurology.
[40] Peter Brown,et al. Scaling of Movement Is Related to Pallidal γ Oscillations in Patients with Dystonia , 2012, The Journal of Neuroscience.
[41] X.L. Chen,et al. Deep Brain Stimulation , 2013, Interventional Neurology.
[42] Tipu Z. Aziz,et al. Oscillatory activity in the subthalamic nucleus during arm reaching in Parkinson's disease , 2012, Experimental Neurology.
[43] E. Montgomery,et al. Risk of fractures in patients with multiple sclerosis: A population-based cohort study , 2012, Neurology.
[44] Karl J. Friston,et al. Movement-Related Changes in Local and Long-Range Synchronization in Parkinson's Disease Revealed by Simultaneous Magnetoencephalography and Intracranial Recordings , 2012, The Journal of Neuroscience.
[45] G. Székely,et al. Generation of Individualized Thalamus Target Maps by Using Statistical Shape Models and Thalamocortical Tractography , 2012, American Journal of Neuroradiology.
[46] Tipu Aziz,et al. Complementary roles of different oscillatory activities in the subthalamic nucleus in coding motor effort in Parkinsonism☆ , 2013, Experimental Neurology.
[47] D. Cheyne. MEG studies of sensorimotor rhythms: A review , 2013, Experimental Neurology.
[48] Andrea A. Kühn,et al. Gamma oscillations in the human basal ganglia , 2013, Experimental Neurology.
[49] Andrea A. Kühn,et al. Thalamic gamma oscillations correlate with reaction time in a Go/noGo task in patients with essential tremor , 2013, NeuroImage.
[50] John-Stuart Brittain,et al. The highs and lows of beta activity in cortico-basal ganglia loops , 2014, The European journal of neuroscience.
[51] Alexander Münchau,et al. Activity Parameters of Subthalamic Nucleus Neurons Selectively Predict Motor Symptom Severity in Parkinson's Disease , 2014, The Journal of Neuroscience.
[52] Andrea A Kühn,et al. Lead-DBS: A toolbox for deep brain stimulation electrode localizations and visualizations , 2015, NeuroImage.
[53] B. Sabatini,et al. Antagonistic but Not Symmetric Regulation of Primary Motor Cortex by Basal Ganglia Direct and Indirect Pathways , 2015, Neuron.
[54] Bernardo L Sabatini,et al. Antagonistic but Not Symmetric Regulation of Primary Motor Cortex by Basal Ganglia Direct and Indirect Pathways. , 2015, Neuron.
[55] A. Graybiel,et al. Bursts of beta oscillation differentiate postperformance activity in the striatum and motor cortex of monkeys performing movement tasks , 2015, Proceedings of the National Academy of Sciences.
[56] Allison T. Connolly,et al. Local field potential recordings in a non-human primate model of Parkinsons disease using the Activa PC + S neurostimulator , 2015, Journal of neural engineering.
[57] Nicole C. Swann,et al. Therapeutic deep brain stimulation reduces cortical phase-amplitude coupling in Parkinson's disease , 2015, Nature Neuroscience.
[58] G. Schneider,et al. Cortico-pallidal oscillatory connectivity in patients with dystonia. , 2015, Brain : a journal of neurology.
[59] Yi Li,et al. Dopamine Is Required for the Neural Representation and Control of Movement Vigor , 2015, Cell.
[60] P. Fries. Rhythms for Cognition: Communication through Coherence , 2015, Neuron.
[61] Alexander L Green,et al. Subthalamic Nucleus Local Field Potential Activity Helps Encode Motor Effort Rather Than Force in Parkinsonism , 2015, The Journal of Neuroscience.
[62] S. Haber,et al. Subthalamic, not striatal, activity correlates with basal ganglia downstream activity in normal and parkinsonian monkeys , 2016, eLife.
[63] G. Deuschl,et al. Cost‐effectiveness of neurostimulation in Parkinson's disease with early motor complications , 2016, Movement disorders : official journal of the Movement Disorder Society.
[64] Bogdan Draganski,et al. Brain networks modulated by subthalamic nucleus deep brain stimulation. , 2016, Brain : a journal of neurology.
[65] E. Miller,et al. Gamma and Beta Bursts Underlie Working Memory , 2016, Neuron.
[66] Siobhan Ewert,et al. Toward defining deep brain stimulation targets in MNI space: A subcortical atlas based on multimodal MRI, histology and structural connectivity , 2016 .
[67] Vladimir Litvak,et al. Deep brain stimulation modulates synchrony within spatially and spectrally distinct resting state networks in Parkinson’s disease , 2016, Brain : a journal of neurology.
[68] Peter Brown,et al. Subthalamic synchronized oscillatory activity correlates with motor impairment in patients with Parkinson's disease , 2016, Movement disorders : official journal of the Movement Disorder Society.
[69] Eric A. Yttri,et al. Opponent and bidirectional control of movement velocity in the basal ganglia , 2016, Nature.
[70] P. Brown,et al. Decoding gripping force based on local field potentials recorded from subthalamic nucleus in humans , 2016, eLife.
[71] Fred Wolf,et al. Flexible information routing by transient synchrony , 2017, Nature Neuroscience.
[72] G. Schneider,et al. Toward an electrophysiological “sweet spot” for deep brain stimulation in the subthalamic nucleus , 2017, Human brain mapping.
[73] Peter Brown,et al. The modulatory effect of adaptive deep brain stimulation on beta bursts in Parkinson’s disease , 2017, Brain : a journal of neurology.
[74] Andreas Horn,et al. Probabilistic conversion of neurosurgical DBS electrode coordinates into MNI space , 2017, NeuroImage.
[75] Jens Volkmann,et al. Innovations in deep brain stimulation methodology , 2017, Movement disorders : official journal of the Movement Disorder Society.
[76] Brent M. Berry,et al. Dissecting gamma frequency activity during human memory processing , 2017, Brain : a journal of neurology.
[77] P. Brown,et al. Subthalamic nucleus beta and gamma activity is modulated depending on the level of imagined grip force , 2017, Experimental Neurology.
[78] Siobhan Ewert,et al. Toward defining deep brain stimulation targets in MNI space: A subcortical atlas based on multimodal MRI, histology and structural connectivity , 2016, NeuroImage.
[79] P. Barry. Deep , 2018, 2018 11th International Conference on Human System Interaction (HSI).
[80] I. Stanford,et al. Bradykinesia Is Driven by Cumulative Beta Power During Continuous Movement and Alleviated by Gabaergic Modulation in Parkinson's Disease , 2019, Front. Neurol..
[81] Peter A Tass,et al. Adaptive delivery of continuous and delayed feedback deep brain stimulation - a computational study , 2019, Scientific Reports.