How do brain areas communicate during the processing of noxious stimuli? An analysis of laser-evoked event-related potentials using the Granger causality index.
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Thomas Weiss | Mihaela Ungureanu | Herbert Witte | Holger Hecht | Lutz Leistritz | Wolfram Hesse | W. Hesse | W. Miltner | H. Witte | T. Weiss | H. Hecht | M. Ungureanu | L. Leistritz | Wolfgang H R Miltner
[1] S Giaquinto,et al. Dipolar source modeling of the P300 event‐related potential after somatosensory stimulation , 2001, Muscle & nerve.
[2] C. Granger. Investigating causal relations by econometric models and cross-spectral methods , 1969 .
[3] Sachiko Koyama,et al. Pain Processing Traced by Magnetoencephalography in the Human Brain , 2004, Brain Topography.
[4] M. Torrens. Co-Planar Stereotaxic Atlas of the Human Brain—3-Dimensional Proportional System: An Approach to Cerebral Imaging, J. Talairach, P. Tournoux. Georg Thieme Verlag, New York (1988), 122 pp., 130 figs. DM 268 , 1990 .
[5] Anthony K. P. Jones,et al. The cortical representation of pain , 1999, PAIN.
[6] François Mauguière,et al. Dual representation of pain in the operculo-insular cortex in humans. , 2003, Brain : a journal of neurology.
[7] F. Mauguière,et al. Scalp topography and dipolar source modelling of potentials evoked by CO2 laser stimulation of the hand. , 1996, Electroencephalography and clinical neurophysiology.
[8] R. C. Oldfield. The assessment and analysis of handedness: the Edinburgh inventory. , 1971, Neuropsychologia.
[9] A. Mouraux,et al. Refractoriness cannot explain why C-fiber laser-evoked brain potentials are recorded only if concomitant Aδ-fiber activation is avoided , 2004, Pain.
[10] F. Mauguière,et al. Association and dissociation between laser‐evoked potentials and pain perception , 1997, Neuroreport.
[11] W. Miltner,et al. Dipole analysis of ultralate (C-fibres) evoked potentials after laser stimulation of tiny cutaneous surface areas in humans , 2001, Neuroscience Letters.
[12] M. Scherg. Fundamentals if dipole source potential analysis , 1990 .
[13] F. Mauguière,et al. Sources of cortical responses to painful CO2 laser skin stimulation of the hand and foot in the human brain , 2000, Clinical Neurophysiology.
[14] A. Chen,et al. Brain electrical source analysis of laser evoked potentials in response to painful trigeminal nerve stimulation. , 1995, Electroencephalography and clinical neurophysiology.
[15] M. Honda,et al. Generator mechanism of pain-related evoked potentials following CO2 laser stimulation of the hand: scalp topography and effect of predictive warning signal. , 1994 .
[16] C. Braun,et al. Adaptive AR modeling of nonstationary time series by means of Kalman filtering , 1998, IEEE Transactions on Biomedical Engineering.
[17] M. Mesulam,et al. Insula of the old world monkey. Architectonics in the insulo‐orbito‐temporal component of the paralimbic brain , 1982, The Journal of comparative neurology.
[18] D. Price. Psychological and neural mechanisms of the affective dimension of pain. , 2000, Science.
[19] R. Peyron,et al. Functional imaging of brain responses to pain. A review and meta-analysis (2000) , 2000, Neurophysiologie Clinique/Clinical Neurophysiology.
[20] M. Bushnell,et al. Pain affect encoded in human anterior cingulate but not somatosensory cortex. , 1997, Science.
[21] M. Arnold,et al. Instantaneous multivariate EEG coherence analysis by means of adaptive high-dimensional autoregressive models , 2001, Journal of Neuroscience Methods.
[22] Herbert Witte,et al. Development of interaction measures based on adaptive non-linear time series analysis of biomedical signals / Entwicklung von Interaktionsmaßen auf der Grundlage adaptiver, nichtlinearer Zeitreihenanalyse von biomedizinischen Signalen , 2006, Biomedizinische Technik. Biomedical engineering.
[23] Double stimulation of tiny skin areas in human subjects increases the number of C- and Aδ-fiber responses , 2005, Neuroscience Letters.
[24] K. Yau,et al. Interoception: the sense of the physiological condition of the body , 2003, Current Opinion in Neurobiology.
[25] Rolf-Detlef Treede,et al. Dipole source analysis of laser-evoked subdural potentials recorded from parasylvian cortex in humans. , 2003, Journal of neurophysiology.
[26] Riitta Hari,et al. Common cortical network for first and second pain , 2005, NeuroImage.
[27] A. Craig,et al. Pain mechanisms: labeled lines versus convergence in central processing. , 2003, Annual review of neuroscience.
[28] P. Roland. Cortical representation of pain , 1992, Trends in Neurosciences.
[29] Bärbel Schack,et al. Dynamic Topographic Spectral Analysis of Cognitive Processes , 1999 .
[30] Lun-Jou Lo,et al. Three-dimensional computed tomography imaging in craniofacial surgery: morphological study and clinical applications. , 2003, Chang Gung medical journal.
[31] N. Crone,et al. Amplitudes of laser evoked potential recorded from primary somatosensory, parasylvian and medial frontal cortex are graded with stimulus intensity , 2004, Pain.
[32] C. Büchel,et al. Dissociable Neural Responses Related to Pain Intensity, Stimulus Intensity, and Stimulus Awareness within the Anterior Cingulate Cortex: A Parametric Single-Trial Laser Functional Magnetic Resonance Imaging Study , 2002, The Journal of Neuroscience.
[33] Koichi Sameshima,et al. Using partial directed coherence to describe neuronal ensemble interactions , 1999, Journal of Neuroscience Methods.
[34] Peter König,et al. On the directionality of cortical interactions studied by structural analysis of electrophysiological recordings , 1999, Biological Cybernetics.
[35] A. Schleicher,et al. The human parietal operculum. I. Cytoarchitectonic mapping of subdivisions. , 2006, Cerebral cortex.
[36] A. Craig. A new view of pain as a homeostatic emotion , 2003, Trends in Neurosciences.
[37] M. Kaminski,et al. Topographic analysis of coherence and propagation of EEG activity during sleep and wakefulness. , 1997, Electroencephalography and clinical neurophysiology.
[38] R P Lesser,et al. Painful stimuli evoke potentials recorded over the human anterior cingulate gyrus. , 1998, Journal of neurophysiology.
[39] D. Price,et al. Plasticity in brain processing and modulation of pain. , 2006, Progress in brain research.
[40] A. Craig. Forebrain emotional asymmetry: a neuroanatomical basis? , 2005, Trends in Cognitive Sciences.
[41] M. Honda,et al. Generator Mechanism of Pain‐Related Evoked Potentials Following CO2 Laser Stimulation of the Hand: Scalp Topography and Effect of Predictive Warning Signal , 1993, Journal of clinical neurophysiology.
[42] A. D. Craig,et al. Human feelings: why are some more aware than others? , 2004, Trends in Cognitive Sciences.
[43] R. Lesser,et al. Painful stimuli evoke potentials recorded from the parasylvian cortex in humans. , 1998, Journal of neurophysiology.
[44] N. Crone,et al. Different generators in human temporal-parasylvian cortex account for subdural laser-evoked potentials, auditory-evoked potentials, and event-related potentials , 2000, Neuroscience Letters.
[45] Léon Plaghki,et al. Nociceptive processing in the human brain of infrequent task-relevant and task-irrelevant noxious stimuli. A study with event-related potentials evoked by CO2 laser radiant heat stimuli , 2003, Pain.
[46] E Donchin,et al. A new method for off-line removal of ocular artifact. , 1983, Electroencephalography and clinical neurophysiology.
[47] Christoph Braun,et al. Coherence of gamma-band EEG activity as a basis for associative learning , 1999, Nature.
[48] M. Frot,et al. Brain generators of laser-evoked potentials: from dipoles to functional significance , 2003, Neurophysiologie Clinique/Clinical Neurophysiology.
[49] Irene Tracey,et al. An fMRI study of cerebral processing of brush-evoked allodynia in neuropathic pain patients , 2006, NeuroImage.
[50] T. Weiss,et al. Selektive C-Faser-Stimulation durch Stimulation winziger Hautareale , 2006, Der Schmerz.
[51] Rolf-Detlef Treede,et al. Neurophysiological studies of pain pathways in peripheral and central nervous system disorders , 2003, Journal of Neurology.
[52] K. Amunts,et al. The human parietal operculum. II. Stereotaxic maps and correlation with functional imaging results. , 2006, Cerebral cortex.
[53] R. Treede,et al. Human brain mechanisms of pain perception and regulation in health and disease , 2005, European journal of pain.
[54] R. Treede,et al. Laser-evoked potentials: exogenous and endogenous components. , 1996, Electroencephalography and clinical neurophysiology.
[55] W. Miltner,et al. Laser-evoked potentials to noxious stimulation during hypnotic analgesia and distraction of attention suggest different brain mechanisms of pain control. , 2001, Psychophysiology.
[56] R. Treede,et al. Equivalent electrical source analysis of pain-related somatosensory evoked potentials elicited by a CO2 laser. , 1993, Journal of clinical neurophysiology : official publication of the American Electroencephalographic Society.
[57] Hualou Liang,et al. Short-window spectral analysis of cortical event-related potentials by adaptive multivariate autoregressive modeling: data preprocessing, model validation, and variability assessment , 2000, Biological Cybernetics.
[58] Hiroshi Shibasaki,et al. Primary somatosensory cortex is actively involved in pain processing in human , 2000, Brain Research.
[59] W. Hesse,et al. The use of time-variant EEG Granger causality for inspecting directed interdependencies of neural assemblies , 2003, Journal of Neuroscience Methods.
[60] Thomas Weiss,et al. Brain activation upon selective stimulation of cutaneous C- and Aδ-fibers , 2008, NeuroImage.
[61] Thomas Weiss,et al. The influence of semantic priming on event-related potentials to painful laser-heat stimuli in humans , 2000, Neuroscience Letters.
[62] B. Vogt. Pain and emotion interactions in subregions of the cingulate gyrus , 2005, Nature Reviews Neuroscience.
[63] Thomas Weiss,et al. A bioadaptive approach for experimental pain research in humans using laser-evoked brain potentials , 1997, Neuroscience Letters.
[64] W. Miltner,et al. The influence of semantic priming on event-related potentials to painful laser-heat stimuli in migraine patients , 2003, Neuroscience Letters.
[65] Eva Möller,et al. Fitting of one ARMA model to multiple trials increases the time resolution of instantaneous coherence , 2003, Biological Cybernetics.
[66] Roland Peyron,et al. Role of Operculoinsular Cortices in Human Pain Processing: Converging Evidence from PET, fMRI, Dipole Modeling, and Intracerebral Recordings of Evoked Potentials , 2002, NeuroImage.
[67] Rolf-Detlef Treede,et al. Laser-evoked potentials are graded and somatotopically organized anteroposteriorly in the operculoinsular cortex of anesthetized monkeys. , 2006, Journal of neurophysiology.
[68] B. Vogt,et al. Pain Processing in Four Regions of Human Cingulate Cortex Localized with Co‐registered PET and MR Imaging , 1996, The European journal of neuroscience.
[69] Luiz A. Baccalá,et al. Partial directed coherence: a new concept in neural structure determination , 2001, Biological Cybernetics.
[70] N E Crone,et al. Cutaneous painful laser stimuli evoke responses recorded directly from primary somatosensory cortex in awake humans. , 2004, Journal of neurophysiology.
[71] G. V. Simpson,et al. A test of brain electrical source analysis (BESA): a simulation study. , 1994, Electroencephalography and clinical neurophysiology.
[72] G Cruccu,et al. Unmyelinated trigeminal pathways as assessed by laser stimuli in humans. , 2003, Brain : a journal of neurology.
[73] François Mauguière,et al. Human SII and posterior insula differently encode thermal laser stimuli. , 2006, Cerebral cortex.