Area of research
Neurology · Cellular and Molecular Neuroscience
Research interest
Research interests include Deep brain stimulation, Neuroscience, Subthalamic nucleus, Local field potential, Parkinson's disease, and Basal ganglia.
Deep Brain Stimulation Initiative: Toward Innovative Technology, New Disease Indications, and Approaches to Current and Future Clinical Challenges in Neuromodulation Therapy
Technology of deep brain stimulation: current status and future directions
Telemonitoring Parkinson’s disease using machine learning by combining tremor and voice analysis
Deep Brain Stimulation for Chronic Cluster Headache: Meta‐Analysis of Individual Patient Data
Decoding voluntary movements and postural tremor based on thalamic LFPs as a basis for closed-loop stimulation for essential tremor
Modulation of Beta Bursts in the Subthalamic Nucleus Predicts Motor Performance
Alternating Modulation of Subthalamic Nucleus Beta Oscillations during Stepping
The Moral Obligation to Prioritize Research Into Deep Brain Stimulation Over Brain Lesioning Procedures for Severe Enduring Anorexia Nervosa
Pedunculopontine nucleus deep brain stimulation in Parkinson's disease: A clinical review
Subthalamic nucleus beta and gamma activity is modulated depending on the level of imagined grip force
Pedunculopontine Nucleus Region Deep Brain Stimulation in Parkinson Disease: Surgical Anatomy and Terminology
Physiology of freezing of gait
Surprise disrupts cognition via a fronto-basal ganglia suppressive mechanism
Comparison of oscillatory activity in subthalamic nucleus in Parkinson's disease and dystonia
Pedunculopontine Nucleus Region Deep Brain Stimulation in Parkinson Disease: Surgical Techniques, Side Effects, and Postoperative Imaging
Decoding gripping force based on local field potentials recorded from subthalamic nucleus in humans
Tremor Reduction by Deep Brain Stimulation Is Associated With Gamma Power Suppression in Parkinson’s Disease
Subthalamic Nucleus Local Field Potential Activity Helps Encode Motor Effort Rather Than Force in Parkinsonism
Subthalamic Nucleus Local Field Potential Activity during the Eriksen Flanker Task Reveals a Novel Role for Theta Phase during Conflict Monitoring
Complementary roles of different oscillatory activities in the subthalamic nucleus in coding motor effort in Parkinsonism
Subthalamic nucleus activity optimizes maximal effort motor responses in Parkinson’s disease
Frequency specific activity in subthalamic nucleus correlates with hand bradykinesia in Parkinson's disease