Pierre Burbaud
PU-PH
/ Université de Bordeaux/ Équipe
IMN clinique (Meissner)
IMN
Dynamique des Réseaux de l'Apprentissage Procédural (Leblois / Mallet)
IMN
/ Contact
+33 5 33 51 47 99
www.orcid.org/0000-0003-1529-8201
Publications
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Amantadine use in the French prospective NS-Park cohort
J Neural Transm. 2024-04-05.
10.1007/s00702-024-02772-4 -
Usefulness of thalamic beta activity for closed-loop therapy in essential tremor
Sci Rep. 2023-12-15. 13(1)
10.1038/s41598-023-49511-5 -
Globus Pallidus internus deep brain stimulation: An alternative treatment for Epilesia partialis continua?
Brain Stimulation. 2022-05-01. 15(3) : 635-637.
10.1016/j.brs.2022.04.011 -
Striatal and cerebellar vesicular acetylcholine transporter expression is disrupted in human DYT1 dystonia.
Brain. 2021-02-26. 144(3) : 909-923.
10.1093/brain/awaa465 -
A Phase 2 Randomized Trial of Asleep versus Awake Subthalamic Nucleus Deep Brain Stimulation for Parkinson’s Disease
Stereotact Funct Neurosurg. 2020-11-30. 99(3) : 230-240.
10.1159/000511424 -
Acute Striato-Cortical Synchronization Induces Focal Motor Seizures in Primates
Cerebral Cortex. 2020-08-08.
10.1093/cercor/bhaa212 -
Dystonia and dopamine: From phenomenology to pathophysiology
Progress in Neurobiology. 2019-11-01. 182 : 101678.
10.1016/j.pneurobio.2019.101678 -
Cellular distribution of adenosine A(2A) receptor mRNA in the primate striatum
J Comp Neurol.. 1998-09-21. 399(2) : 229-40.
10.1002/(SICI)1096-9861(19980921)399:23.0.CO;2-2 -
Novel anoctamin-3 missense mutation responsible for early-onset myoclonic dystonia
Parkinsonism & Related Disorders. 2019-07-01. 64 : 346-348.
10.1016/j.parkreldis.2019.04.019 -
Globus pallidus internus stimulation in spino-cerebellar ataxia type 3
J Neurol. 2018-06-06. 265(7) : 1714-1716.
10.1007/s00415-018-8922-8 -
Anterior pallidal deep brain stimulation for Tourette’s syndrome: a randomised, double-blind, controlled trial.
The Lancet Neurology. 2017-08-01. 16(8) : 610-619.
10.1016/s1474-4422(17)30160-6 -
Stuttering or reflex seizure? A case report.
Epileptic Disord. . 6(3) : 181-185.
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Prevalence of Bruxism in Hemifacial-Spasm Patients
Journal of Prosthodontics. 2015-11-20. 26(4) : 280-283.
10.1111/jopr.12394 -
Electrophysiological Correlates of a Versatile Executive Control System in the Monkey Anterior Cingulate Cortex.
Cereb. Cortex. 2015-01-28. 26(4) : 1684-1697.
10.1093/cercor/bhv004 -
Contextual and behavioral influences on uncertainty in obsessive-compulsive disorder.
Cortex. 2015-01-01. 62 : 1-10.
10.1016/j.cortex.2012.12.010 -
Intraoperative 3D imaging control during subthalamic Deep Brain Stimulation procedures using O-arm® technology: Experience in 15 patients
Neurochirurgie. 2014-12-01. 60(6) : 276-282.
10.1016/j.neuchi.2014.05.005 -
Neuronal activity correlated with checking behaviour in the subthalamic nucleus of patients with obsessive-compulsive disorder.
Brain. 2013-01-01. 136(1) : 304-317.
10.1093/brain/aws306 -
The associative and limbic thalamus in the pathophysiology of obsessive-compulsive disorder: An experimental study in the monkey
Transl Psychiatry. 2012-09-01. 2(9) : e161-e161.
10.1038/tp.2012.88 -
Is deep brain stimulation able to make antidepressants effective in resistant obsessive-compulsive disorder?
Biological Psychiatry. 2012-06-01. 71(11) : e43-e44.
10.1016/j.biopsych.2011.10.013 -
Basal ganglia dysfunction in OCD: subthalamic neuronal activity correlates with symptoms severity and predicts high-frequency stimulation efficacy.
Transl Psychiatry. 2011-05-03. 1(5) : e5-e5.
10.1038/tp.2011.5 -
Anatomical alterations and symptom-related functional activity in obsessive-compulsive disorder are correlated in the lateral orbitofrontal cortex.
Biological Psychiatry. 2010-04-01. 67(7) : e37-e38.
10.1016/j.biopsych.2009.10.007 -
Gray matter alterations in obsessive-compulsive disorder: an anatomic likelihood estimation meta-analysis.
Neuropsychopharmacol. 2009-11-04. 35(3) : 686-691.
10.1038/npp.2009.175 -
Inverse relationship between thalamic and orbitofrontal volumes in obsessive-compulsive disorder.
Progress in Neuro-Psychopharmacology and Biological Psychiatry. 2009-06-01. 33(4) : 682-687.
10.1016/j.pnpbp.2009.03.011 -
Lesions in the associative striatum improve obsessive-compulsive disorder.
Biological Psychiatry. 2009-03-01. 65(5) : e11-e13.
10.1016/j.biopsych.2008.10.041 -
Meta-analysis of brain volume changes in obsessive-compulsive disorder.
Biological Psychiatry. 2009-01-01. 65(1) : 75-83.
10.1016/j.biopsych.2008.06.019 -
Neuronal Correlates of Obsessions in the Caudate Nucleus
Biological Psychiatry. 2008-03-01. 63(6) : 557-562.
10.1016/j.biopsych.2007.06.023 -
Impact of commitment on performance evaluation in the rostral cingulate motor area
Journal of Neuroscience. 2007-07-11. 27(28) : 7482-7489.
10.1523/JNEUROSCI.4718-06.2007 -
Deep brain stimulation of the ventral striatum in the treatment of obsessive-compulsive disorder and major depression,Stimulation cérébrale profonde du striatum ventral dans le traitement du trouble obsessionnel-compulsif avec dépression majeure
Med Sci (Paris). 2005-10-01. 21(10) : 811-813.
10.1051/medsci/20052110811 -
Pathophysiology of obsessive-compulsive disorder: a necessary link between phenomenology, neuropsychology, imagery and physiology.
Progress in Neurobiology. 2004-02-01. 72(3) : 195-221.
10.1016/j.pneurobio.2004.02.004