Closed-Loop Adaptive Deep Brain Stimulation in Parkinson’s Disease: Procedures to Achieve It and Future Perspectives
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Guanyu Zhu | Lin Shi | Jianguo Zhang | A. Yang | Yin Jiang | Fangang Meng | Shu Wang | Chunkui Zhang | Bing Wu | F. Meng
[1] G. Schneider,et al. Subthalamic beta bursts correlate with dopamine-dependent motor symptoms in 106 Parkinson’s patients , 2023, bioRxiv.
[2] Guanyu Zhu,et al. Adaptive deep brain stimulation for Parkinson’s disease: looking back at the past decade on motor outcomes , 2022, Journal of Neurology.
[3] C. Zammit,et al. Closed loop deep brain stimulation: A systematic scoping review , 2022, Clinical Neurology and Neurosurgery.
[4] B. V. van Wijk,et al. A systematic review of local field potential physiomarkers in Parkinson’s disease: from clinical correlations to adaptive deep brain stimulation algorithms , 2022, Journal of Neurology.
[5] Houeto Jean-Luc. [Parkinson's disease]. , 2022, La Revue du praticien.
[6] Suneil K. Kalia,et al. Advances in DBS Technology and Novel Applications: Focus on Movement Disorders , 2022, Current Neurology and Neuroscience Reports.
[7] Kyle T. Mitchell,et al. Evoked potentials generated by deep brain stimulation for Parkinson’s disease , 2022, Brain Stimulation.
[8] N. Lan,et al. The Effects of Deep Brain Stimulation on Motor Unit Activities in Parkinson's Disease based on High-Density Surface EMG Analysis , 2022, Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[9] Ian R. Wickersham,et al. Targeting thalamic circuits rescues motor and mood deficits in PD mice , 2022, Nature.
[10] S. Nasuto,et al. Subthalamic low beta bursts differ in Parkinson’s disease phenotypes , 2022, Clinical Neurophysiology.
[11] A. Berardelli,et al. Clinical neurophysiology of Parkinson’s disease and parkinsonism , 2022, Clinical neurophysiology practice.
[12] H. Renvall,et al. Cortical beta burst dynamics are altered in Parkinson's disease but normalized by deep brain stimulation , 2022, NeuroImage.
[13] Kara A. Johnson,et al. Past, Present, and Future of Deep Brain Stimulation: Hardware, Software, Imaging, Physiology and Novel Approaches , 2022, Frontiers in Neurology.
[14] Monish M. Maharaj,et al. The application of artificial intelligence and custom algorithms with inertial wearable devices for gait analysis and detection of gait-altering pathologies in adults: A scoping review of literature , 2022, Digital health.
[15] R. Richardson,et al. Machine learning based brain signal decoding for intelligent adaptive deep brain stimulation , 2022, Experimental Neurology.
[16] Ya-Chin Yang,et al. An electrophysiological perspective on Parkinson’s disease: symptomatic pathogenesis and therapeutic approaches , 2021, Journal of Biomedical Science.
[17] X. Geng,et al. Real-time removal of stimulation artifacts in closed-loop deep brain stimulation , 2021, Journal of neural engineering.
[18] E. M. Moraud,et al. Controlling Clinical States Governed by Different Temporal Dynamics With Closed-Loop Deep Brain Stimulation: A Principled Framework , 2021, Frontiers in Neuroscience.
[19] Maria Letizia Caminiti,et al. Adaptive, personalized closed-loop therapy for Parkinson’s disease: biochemical, neurophysiological, and wearable sensing systems , 2021, Expert review of neurotherapeutics.
[20] G. Sobue,et al. Instability of speech in Parkinson disease patients with subthalamic nucleus deep brain stimulation. , 2021, Parkinsonism & Related Disorders.
[21] J. Henderson,et al. Lack of progression of beta dynamics after long‐term subthalamic neurostimulation , 2021, Annals of clinical and translational neurology.
[22] Heather E. Dawes,et al. Closed-loop neuromodulation in an individual with treatment-resistant depression , 2021, Nature Medicine.
[23] S. Delp,et al. Assessing inertial measurement unit locations for freezing of gait detection and patient preference , 2021, medRxiv.
[24] J. Volkmann,et al. Eight-hours conventional versus adaptive deep brain stimulation of the subthalamic nucleus in Parkinson’s disease , 2021, NPJ Parkinson's disease.
[25] M. Okun,et al. Wearable sensor-driven responsive deep brain stimulation for essential tremor , 2021, Brain Stimulation.
[26] B. Caulfield,et al. Assessing the usability of wearable devices to measure gait and physical activity in chronic conditions: a systematic review , 2021, Journal of neuroengineering and rehabilitation.
[27] J. Volkmann,et al. Clinical perspectives of adaptive deep brain stimulation , 2021, Brain Stimulation.
[28] P. Cao,et al. α and θ oscillations in the subthalamic nucleus are potential biomarkers for Parkinson's disease with depressive symptoms. , 2021, Parkinsonism & related disorders.
[29] K. Houkin,et al. Chronic deep brain stimulation reduces cortical β-γ phase amplitude-coupling in patients with Parkinson's disease. , 2021, Parkinsonism & related disorders.
[30] A. Quattrone,et al. Wearable Devices for Assessment of Tremor , 2021, Frontiers in Neurology.
[31] Bryan M. Li,et al. Predicting optimal deep brain stimulation parameters for Parkinson’s disease using functional MRI and machine learning , 2021, Nature Communications.
[32] David Escobar Sanabria,et al. Controlling pallidal oscillations in real-time in Parkinson’s disease using evoked interference deep brain stimulation (eiDBS): Proof of concept in the human , 2021, Brain Stimulation.
[33] Andrew G. Lamperski,et al. Semi-automated approaches to optimize deep brain stimulation parameters in Parkinson’s disease , 2021, Journal of neuroengineering and rehabilitation.
[34] Sonja W. Scholz,et al. Challenges in the diagnosis of Parkinson's disease , 2021, The Lancet Neurology.
[35] R. Turner,et al. Electrocorticography is superior to subthalamic local field potentials for movement decoding in Parkinson’s disease , 2021, bioRxiv.
[36] Matthew D. Johnson,et al. Proceedings of the Eighth Annual Deep Brain Stimulation Think Tank: Advances in Optogenetics, Ethical Issues Affecting DBS Research, Neuromodulatory Approaches for Depression, Adaptive Neurostimulation, and Emerging DBS Technologies , 2021, Frontiers in Human Neuroscience.
[37] Matthew D. Johnson,et al. High‐Frequency Oscillations in the Pallidum: A Pathophysiological Biomarker in Parkinson's Disease? , 2021, Movement disorders : official journal of the Movement Disorder Society.
[38] Lekshmy Sudha Kumari,et al. Phase-Dependent Deep Brain Stimulation: A Review , 2021, Brain sciences.
[39] Heather E. Dawes,et al. Long-term wireless streaming of neural recordings for circuit discovery and adaptive stimulation in patients with Parkinson’s disease , 2021, Nature Biotechnology.
[40] Jaimie A. Roper,et al. Closed-Loop Deep Brain Stimulation to Treat Medication-Refractory Freezing of Gait in Parkinson’s Disease , 2021, Frontiers in Human Neuroscience.
[41] R. Sinha,et al. Distinct neural circuits are associated with subclinical neuropsychiatric symptoms in Parkinson's disease , 2021, Journal of the Neurological Sciences.
[42] R. Bittar,et al. Deep Brain Stimulation of the Subthalamic Nucleus in Parkinson’s Disease: A Meta-Analysis of Mood Effects , 2021, Neuropsychology Review.
[43] P. Brown,et al. Closed‐Loop Deep Brain Stimulation for Essential Tremor Based on Thalamic Local Field Potentials , 2021, Movement disorders : official journal of the Movement Disorder Society.
[44] Y. Shimo,et al. Closed-loop programming using external responses for deep brain stimulation in Parkinson's disease. , 2021, Parkinsonism & related disorders.
[45] E. Chang,et al. State-dependent responses to intracranial brain stimulation in a patient with depression , 2021, Nature Medicine.
[46] A. Mazzoni,et al. Impulsivity Markers in Parkinsonian Subthalamic Single‐Unit Activity , 2021, Movement disorders : official journal of the Movement Disorder Society.
[47] Vrutangkumar V. Shah,et al. Measuring freezing of gait during daily-life: an open-source, wearable sensors approach , 2021, Journal of neuroengineering and rehabilitation.
[48] Darrin J. Lee,et al. Deep Brain Stimulation for Alzheimer's Disease: Tackling Circuit Dysfunction , 2020, Neuromodulation : journal of the International Neuromodulation Society.
[49] M. Rizzone,et al. Low frequency subthalamic stimulation and event-related potentials in Parkinson disease. , 2020, Parkinsonism & related disorders.
[50] M. Okun,et al. Chronic embedded cortico-thalamic closed-loop deep brain stimulation for the treatment of essential tremor , 2020, Science Translational Medicine.
[51] T. Knösche,et al. Spatiotemporal features of β-γ phase-amplitude coupling in Parkinson's disease derived from scalp EEG. , 2020, Brain : a journal of neurology.
[52] W. Grill,et al. Technology of deep brain stimulation: current status and future directions , 2020, Nature Reviews Neurology.
[53] David T. Brocker,et al. Evoked potentials reveal neural circuits engaged by human deep brain stimulation , 2020, Brain Stimulation.
[54] Ruirui Lu,et al. Evaluation of Wearable Sensor Devices in Parkinson's Disease: A Review of Current Status and Future Prospects , 2020, Parkinson's disease.
[55] P. Starr,et al. Eight cylindrical contact lead recordings in the subthalamic region localize beta oscillations source to the dorsal STN , 2020, Neurobiology of Disease.
[56] A. Pokorná,et al. Use of high-density EEG in patients with Parkinson's disease treated with deep brain stimulation. , 2020, Biomedical papers of the Medical Faculty of the University Palacky, Olomouc, Czechoslovakia.
[57] E. Figueiredo,et al. Spectral characteristics of subthalamic nucleus local field potentials in Parkinson's disease: Phenotype and movement matter , 2021, The European journal of neuroscience.
[58] Jordan E. Pierce,et al. Subthalamic nucleus oscillations during vocal emotion processing are dependent of the motor asymmetry of Parkinson's disease , 2020, NeuroImage.
[59] E. Růžička,et al. Moving towards home-based community-centred integrated care in Parkinson's disease. , 2020, Parkinsonism & related disorders.
[60] Mengyang Wang,et al. Long-term efficacy and cognitive effects of bilateral hippocampal deep brain stimulation in patients with drug-resistant temporal lobe epilepsy , 2020, Neurological Sciences.
[61] H. Bronte-Stewart,et al. Neural closed-loop deep brain stimulation for freezing of gait , 2020, Brain Stimulation.
[62] Yue Zhou,et al. The Design of a Parkinson’s Tremor Predictor and Estimator Using a Hybrid Convolutional-Multilayer Perceptron Neural Network , 2020, 2020 42nd Annual International Conference of the IEEE Engineering in Medicine & Biology Society (EMBC).
[63] Christopher J. Kimble,et al. Clinical applications of neurochemical and electrophysiological measurements for closed-loop neurostimulation. , 2020, Neurosurgical focus.
[64] J. Jankovic,et al. Parkinson’s disease: etiopathogenesis and treatment , 2020, Journal of Neurology, Neurosurgery, and Psychiatry.
[65] L. Almeida,et al. Combined Unilateral Subthalamic Nucleus and Contralateral Globus Pallidus Interna Deep Brain Stimulation for Treatment of Parkinson Disease: A Pilot Study of Symptom-Tailored Stimulation , 2020, Neurosurgery.
[66] Mengyang Wang,et al. Long-term efficacy and cognitive effects of voltage-based deep brain stimulation for drug-resistant essential tremor , 2020, Clinical Neurology and Neurosurgery.
[67] G. Petsko,et al. Personalized iPSC-Derived Dopamine Progenitor Cells for Parkinson's Disease. , 2020, The New England journal of medicine.
[68] Timothy G. Constandinou,et al. Impact of referencing scheme on decoding performance of LFP-based brain-machine interface , 2020, bioRxiv.
[69] P. Brown,et al. Neurofeedback-Linked Suppression of Cortical β Bursts Speeds Up Movement Initiation in Healthy Motor Control: A Double-Blind Sham-Controlled Study , 2020, The Journal of Neuroscience.
[70] Hugh J. McDermott,et al. Tailoring Subthalamic Nucleus Deep Brain Stimulation for Parkinson's Disease Using Evoked Resonant Neural Activity , 2020, Frontiers in Human Neuroscience.
[71] P. Brown,et al. Debugging Adaptive Deep Brain Stimulation for Parkinson's Disease , 2020, Movement disorders : official journal of the Movement Disorder Society.
[72] Mohammad H. Mahoor,et al. LFP-Net: A deep learning framework to recognize human behavioral activities using brain STN-LFP signals , 2020, Journal of Neuroscience Methods.
[73] Claudio Pollo,et al. Subthalamic nucleus activity dynamics and limb movement prediction in Parkinson’s disease , 2020, Brain : a journal of neurology.
[74] Roberto Cano-de la Cuerda,et al. Quantitative Measurement of Rigidity in Parkinson’s Disease: A Systematic Review , 2020, Sensors.
[75] P. Bonato,et al. mHealth and wearable technology should replace motor diaries to track motor fluctuations in Parkinson’s disease , 2020, npj Digital Medicine.
[76] Esther Florin,et al. Characterization of information processing in the subthalamic area of Parkinson’s patients , 2020, NeuroImage.
[77] Esther Florin,et al. Spontaneous network activity <35 Hz accounts for variability in stimulus-induced gamma responses , 2019, NeuroImage.
[78] Mahsa Shoaran,et al. Improved detection of Parkinsonian resting tremor with feature engineering and Kalman filtering , 2019, Clinical Neurophysiology.
[79] K. Double,et al. Oxidative stress in the aging substantia nigra and the etiology of Parkinson's disease , 2019, Aging cell.
[80] Abbey B. Holt,et al. Temporal evolution of beta bursts in the parkinsonian cortical and basal ganglia network , 2019, Proceedings of the National Academy of Sciences.
[81] H. Bronte-Stewart,et al. Dual threshold neural closed loop deep brain stimulation in Parkinson disease patients , 2019, Brain Stimulation.
[82] Jorik Nonnekes,et al. Clinical and methodological challenges for assessing freezing of gait: Future perspectives , 2019, Movement disorders : official journal of the Movement Disorder Society.
[83] J. Donoghue,et al. Biomarkers for closed-loop deep brain stimulation in Parkinson disease and beyond , 2019, Nature Reviews Neurology.
[84] M. Okun,et al. Emerging therapies in Parkinson disease — repurposed drugs and new approaches , 2019, Nature Reviews Neurology.
[85] M. Todisco,et al. Monitoring subthalamic oscillations for 24 hours in a freely moving Parkinson's disease patient , 2019, Movement disorders : official journal of the Movement Disorder Society.
[86] M. Butz,et al. Longitudinal Recordings Reveal Transient Increase of Alpha/Low-Beta Power in the Subthalamic Nucleus Associated With the Onset of Parkinsonian Rest Tremor , 2019, Front. Neurol..
[87] T. Foltynie,et al. Long-term outcomes of deep brain stimulation in Parkinson disease , 2019, Nature Reviews Neurology.
[88] M. Okun,et al. A review of basal ganglia circuits and physiology: Application to deep brain stimulation. , 2019, Parkinsonism & related disorders.
[89] A. Lang,et al. Randomized Delayed‐Start Trial of Levodopa in Parkinson's Disease , 2019, The New England journal of medicine.
[90] B. Bloem,et al. The Emerging Evidence of the Parkinson Pandemic , 2018, Journal of Parkinson's disease.
[91] Elijah D. Christensen,et al. Inferring sleep stage from local field potentials recorded in the subthalamic nucleus of Parkinson's patients , 2018, Journal of sleep research.
[92] J. Parisi,et al. Levodopa-induced dyskinesia in Parkinson disease , 2018, Neurology.
[93] J. Fiez,et al. Subthalamic Nucleus and Sensorimotor Cortex Activity During Speech Production , 2018, The Journal of Neuroscience.
[94] Yasin Temel,et al. An update on adaptive deep brain stimulation in Parkinson's disease , 2018, Movement disorders : official journal of the Movement Disorder Society.
[95] C. Sampaio,et al. International Parkinson and movement disorder society evidence‐based medicine review: Update on treatments for the motor symptoms of Parkinson's disease , 2018, Movement disorders : official journal of the Movement Disorder Society.
[96] Suchi Saria,et al. Using Smartphones and Machine Learning to Quantify Parkinson Disease Severity: The Mobile Parkinson Disease Score , 2018, JAMA neurology.
[97] Markus Butz,et al. Unilateral deep brain stimulation suppresses alpha and beta oscillations in sensorimotor cortices , 2018, NeuroImage.
[98] Margaret C. Thompson,et al. Adaptive deep brain stimulation for Parkinson’s disease using motor cortex sensing , 2018, Journal of neural engineering.
[99] N. Pouratian,et al. Pallidal deep brain stimulation modulates excessive cortical high β phase amplitude coupling in Parkinson disease , 2018, Brain Stimulation.
[100] Guglielmo Foffani,et al. Eight-hours adaptive deep brain stimulation in patients with Parkinson disease , 2018, Neurology.
[101] Fabrizio Vecchio,et al. Quantitative Analysis of Bradykinesia and Rigidity in Parkinson’s Disease , 2018, Front. Neurol..
[102] Kenneth McIsaac,et al. Towards remote monitoring of Parkinson’s disease tremor using wearable motion capture systems , 2018, Journal of the Neurological Sciences.
[103] Tipu Aziz,et al. Pedunculopontine nucleus deep brain stimulation in Parkinson's disease: A clinical review , 2018, Movement disorders : official journal of the Movement Disorder Society.
[104] Mohammad H. Mahoor,et al. A hierarchical structure for human behavior classification using STN local field potentials , 2018, Journal of Neuroscience Methods.
[105] Anca Velisar,et al. Subthalamic neural entropy is a feature of freezing of gait in freely moving people with Parkinson's disease , 2017, Neurobiology of Disease.
[106] H. Fernandez,et al. Cognitive Impact of Deep Brain Stimulation on Parkinson's Disease Patients , 2017, Parkinson's disease.
[107] P. Brown,et al. Long term correlation of subthalamic beta band activity with motor impairment in patients with Parkinson’s disease , 2017, Clinical Neurophysiology.
[108] Andrea A. Kühn,et al. Beta burst dynamics in Parkinson’s disease OFF and ON dopaminergic medication , 2017, Brain : a journal of neurology.
[109] M. A. J. van Gerven,et al. Parkinsonian rest tremor can be detected accurately based on neuronal oscillations recorded from the subthalamic nucleus , 2017, Clinical Neurophysiology.
[110] Margaret C. Thompson,et al. Chronic electrocorticography for sensing movement intention and closed-loop deep brain stimulation with wearable sensors in an essential tremor patient. , 2017, Journal of neurosurgery.
[111] Ravi Vaidyanathan,et al. Automated assessment of symptom severity changes during deep brain stimulation (DBS) therapy for Parkinson's disease , 2017, 2017 International Conference on Rehabilitation Robotics (ICORR).
[112] Suneil K. Kalia,et al. Deep brain stimulation for Parkinson's disease: meta-analysis of results of randomized trials at varying lengths of follow-up. , 2017, Journal of neurosurgery.
[113] Peter Brown,et al. Adaptive DBS in a Parkinson's patient with chronically implanted DBS: A proof of principle , 2017, Movement disorders : official journal of the Movement Disorder Society.
[114] Kristina Zeljic,et al. Remotely Programmed Deep Brain Stimulation of the Bilateral Subthalamic Nucleus for the Treatment of Primary Parkinson Disease: A Randomized Controlled Trial Investigating the Safety and Efficacy of a Novel Deep Brain Stimulation System , 2017, Stereotactic and Functional Neurosurgery.
[115] P. Brown,et al. Adaptive Deep Brain Stimulation for Movement Disorders: The Long Road to Clinical Therapy , 2017, Movement disorders : official journal of the Movement Disorder Society.
[116] T. Foltynie,et al. Subthalamic Nucleus Deep Brain Stimulation in Parkinson’s Disease: The Effect of Varying Stimulation Parameters , 2017, Journal of Parkinson's disease.
[117] Bradley Voytek,et al. Nonsinusoidal Beta Oscillations Reflect Cortical Pathophysiology in Parkinson's Disease , 2017, The Journal of Neuroscience.
[118] P. Brown,et al. Subthalamic nucleus gamma activity increases not only during movement but also during movement inhibition , 2017, eLife.
[119] Svjetlana Miocinovic,et al. Chronic multisite brain recordings from a totally implantable bidirectional neural interface: experience in 5 patients with Parkinson's disease. , 2017, Journal of neurosurgery.
[120] Sara Marceglia,et al. Adaptive deep brain stimulation controls levodopa‐induced side effects in Parkinsonian patients , 2017, Movement disorders : official journal of the Movement Disorder Society.
[121] 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.
[122] H. Brontë-Stewart,et al. Subthalamic oscillations and phase amplitude coupling are greater in the more affected hemisphere in Parkinson’s disease , 2017, Clinical Neurophysiology.
[123] Karl J. Friston,et al. Stimulating at the right time: phase-specific deep brain stimulation , 2016, Brain : a journal of neurology.
[124] Gabriele Arnulfo,et al. Striatal Dopaminergic Innervation Regulates Subthalamic Beta-Oscillations and Cortical-Subcortical Coupling during Movements: Preliminary Evidence in Subjects with Parkinson’s Disease , 2016, Front. Hum. Neurosci..
[125] Matthew D. Johnson,et al. Closed-Loop Deep Brain Stimulation Effects on Parkinsonian Motor Symptoms in a Non-Human Primate – Is Beta Enough? , 2016, Brain Stimulation.
[126] 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.
[127] Tanja Schultz,et al. Automatic Speech Recognition from Neural Signals: A Focused Review , 2016, Front. Neurosci..
[128] P. Brown,et al. Adaptive deep brain stimulation for Parkinson's disease demonstrates reduced speech side effects compared to conventional stimulation in the acute setting , 2016, Journal of Neurology, Neurosurgery & Psychiatry.
[129] Michael J. Randazzo,et al. Movement-related dynamics of cortical oscillations in Parkinson's disease and essential tremor. , 2016, Brain : a journal of neurology.
[130] Sara Marceglia,et al. The adaptive deep brain stimulation challenge. , 2016, Parkinsonism & related disorders.
[131] Nicole C. Swann,et al. Gamma Oscillations in the Hyperkinetic State Detected with Chronic Human Brain Recordings in Parkinson's Disease , 2016, Journal of Neuroscience.
[132] Corneliu C. Luca,et al. Comparative effects of unilateral and bilateral subthalamic nucleus deep brain stimulation on gait kinematics in Parkinson’s disease: a randomized, blinded study , 2016, Journal of Neurology.
[133] Suneil K. Kalia,et al. Deep Brain Stimulation Target Selection for Parkinson’s Disease , 2016, Canadian Journal of Neurological Sciences / Journal Canadien des Sciences Neurologiques.
[134] Jeffrey A. Herron,et al. Kinematic Adaptive Deep Brain Stimulation for Resting Tremor in Parkinson's Disease , 2016, Movement disorders : official journal of the Movement Disorder Society.
[135] Nicole C. Swann,et al. Electrocorticography reveals beta desynchronization in the basal ganglia-cortical loop during rest tremor in Parkinson's disease , 2016, Neurobiology of Disease.
[136] P. Brown,et al. Adaptive deep brain stimulation in Parkinson's disease , 2016, Parkinsonism & related disorders.
[137] Daniela Tuninetti,et al. Towards fully automated closed-loop Deep Brain Stimulation in Parkinson's disease patients: A LAMSTAR-based tremor predictor , 2015, 2015 37th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[138] M. Welter,et al. Effects of deep brain stimulation on balance and gait in patients with Parkinson's disease: A systematic neurophysiological review , 2015, Neurophysiologie Clinique/Clinical Neurophysiology.
[139] Hayriye Cagnan,et al. Bilateral adaptive deep brain stimulation is effective in Parkinson's disease , 2015, Journal of Neurology, Neurosurgery & Psychiatry.
[140] Sara Marceglia,et al. Adaptive deep brain stimulation in a freely moving parkinsonian patient , 2015, Movement disorders : official journal of the Movement Disorder Society.
[141] Nicole C. Swann,et al. Therapeutic deep brain stimulation reduces cortical phase-amplitude coupling in Parkinson's disease , 2015, Nature Neuroscience.
[142] John-Stuart Brittain,et al. Oscillations and the basal ganglia: Motor control and beyond , 2014, NeuroImage.
[143] P. Brown,et al. Phase dependent modulation of tremor amplitude in essential tremor through thalamic stimulation , 2013, Brain : a journal of neurology.
[144] P. Brown,et al. Adaptive Deep Brain Stimulation In Advanced Parkinson Disease , 2013, Annals of neurology.
[145] A. Priori,et al. Adaptive deep brain stimulation (aDBS) controlled by local field potential oscillations , 2013, Experimental Neurology.
[146] D. Graupe,et al. Pathological tremor prediction using surface electromyogram and acceleration: potential use in ‘ON–OFF’ demand driven deep brain stimulator design , 2013, Journal of neural engineering.
[147] K. Miller,et al. Exaggerated phase–amplitude coupling in the primary motor cortex in Parkinson disease , 2013, Proceedings of the National Academy of Sciences.
[148] Tipu Z. Aziz,et al. Persistent suppression of subthalamic beta-band activity during rhythmic finger tapping in Parkinson’s disease , 2013, Clinical Neurophysiology.
[149] P. Brown,et al. Beta band stability over time correlates with Parkinsonian rigidity and bradykinesia , 2012, Experimental Neurology.
[150] 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.
[151] P. Starr,et al. Oscillations in sensorimotor cortex in movement disorders: an electrocorticography study. , 2012, Brain : a journal of neurology.
[152] S. Haber,et al. Closed-Loop Deep Brain Stimulation Is Superior in Ameliorating Parkinsonism , 2011, Neuron.
[153] Sara Marceglia,et al. Subthalamic Local Field Beta Oscillations during Ongoing Deep Brain Stimulation in Parkinson’s Disease in Hyperacute and Chronic Phases , 2011, Neurosignals.
[154] W. Grill,et al. Closed-Loop Control of Deep Brain Stimulation: A Simulation Study , 2011, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[155] Sara Marceglia,et al. The effects of levodopa and ongoing deep brain stimulation on subthalamic beta oscillations in Parkinson's disease , 2010, Experimental Neurology.
[156] Grant D. Huang,et al. Bilateral deep brain stimulation vs best medical therapy for patients with advanced Parkinson disease: a randomized controlled trial. , 2009, JAMA.
[157] Annamaria Bianchi,et al. Basal ganglia local field potentials: applications in the development of new deep brain stimulation devices for movement disorders , 2007, Expert review of medical devices.
[158] Mandy Miller Koop,et al. Intra-operative STN DBS attenuates the prominent beta rhythm in the STN in Parkinson's disease , 2006, Experimental Neurology.
[159] OUP accepted manuscript , 2022, Brain.
[160] OUP accepted manuscript , 2022, Brain.
[161] I. Isaias,et al. Adaptive deep brain stimulation: Retuning Parkinson's disease. , 2022, Handbook of clinical neurology.
[162] Yanan Sui,et al. Automatic Sleep Stage Classification Based on Subthalamic Local Field Potentials , 2019, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[163] A. Priori,et al. Risk of Infection After Local Field Potential Recording from Externalized Deep Brain Stimulation Leads in Parkinson's Disease. , 2017, World neurosurgery.