Noninvasive human rain stimulation

被引:628
作者
Wagner, Timothy [1 ]
Valero-Cabre, Antoni
Pascual-Leone, Alvaro
机构
[1] Harvard Univ, Sch Med, Beth Israel Deaconess Med Ctr, Ctr Noninvas Brain Stimulat, Boston, MA 02215 USA
[2] Boston Univ, Sch Med, Dept Anat & Neurobiol, Lab Cerebral Dynam Plast & Rehab, Boston, MA 02218 USA
[3] Fdn Ophtalmol Rothschild, Dept Neurol, CNRS, LPNC,Unit ERT Treat Vis 5105, F-75019 Paris, France
[4] Univ Autonoma Barcelona, Inst Guttmann Rehab, E-08193 Barcelona, Spain
关键词
TMS; tDCS; electromagnetism; neural networks; modeling; neurophysiology; neuromodulation; therapeutic applications; rehabilitation;
D O I
10.1146/annurev.bioeng.9.061206.133100
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Noninvasive brain stimulation with transcranial mignetic stimulation (TMS) or transcranial direct current stimulation (tDCS) is valuable in research and has potential therapeutic applications in cognitive neuroscience, neurophysiology, psychiatry, and neurology. TMS allows neurostimulation and neuromodulation, while tDCS is a purely neuromodulatory application. TMS and tDCS allow diagnostic and interventional neurophysiology applications, and focal neuropharmacology delivery. However, the physics and basic mechanisms of action remain incompletely explored. Following an overview of the history and current applications of noninvasive brain stimulation, we review stimulation device design principles, the electromagnetic and physical foundations of the techniques, and the current knowledge about the electrophysiologic basis of the effects. Finally, we discuss potential biomedical and electrical engineering developments that could lead to more effective stimulation devices, better suited for the specific applications.
引用
收藏
页码:527 / 565
页数:39
相关论文
共 150 条
[21]   Echoplanar BOLD fMRI of brain activation induced by concurrent transcranial magnetic stimulation [J].
Bohning, DE ;
Shastri, A ;
Nahas, Z ;
Lorberbaum, JP ;
Andersen, SW ;
Dannels, WR ;
Haxthausen, EU ;
Vincent, DJ ;
George, MS .
INVESTIGATIVE RADIOLOGY, 1998, 33 (06) :336-340
[22]   ANALYSIS OF THE DISTRIBUTION OF CURRENTS INDUCED BY A CHANGING MAGNETIC-FIELD IN A VOLUME CONDUCTOR [J].
BRANSTON, NM ;
TOFTS, PS .
PHYSICS IN MEDICINE AND BIOLOGY, 1991, 36 (02) :161-168
[23]   Toroidal coil models for transcutaneous magnetic stimulation of nerves [J].
Carbunaru, R ;
Durand, DM .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2001, 48 (04) :434-441
[24]   AN ACCURATE 3-D MODEL FOR MAGNETIC STIMULATION OF THE BRAIN CORTEX [J].
CERRI, G ;
DELEO, R ;
MOGLIE, F ;
SCHIAVONI, A .
JOURNAL OF MEDICAL ENGINEERING & TECHNOLOGY, 1995, 19 (01) :7-16
[25]   Changes in effective connectivity of the primary motor cortex in stroke patients after rehabilitative therapy [J].
Chouinard, Philippe A. ;
Leonard, Gabriel ;
Paus, Tomas .
EXPERIMENTAL NEUROLOGY, 2006, 201 (02) :375-387
[26]   DEVELOPING A MORE FOCAL MAGNETIC STIMULATOR .1. SOME BASIC PRINCIPLES [J].
COHEN, D ;
CUFFIN, BN .
JOURNAL OF CLINICAL NEUROPHYSIOLOGY, 1991, 8 (01) :102-111
[27]   EFFECTS OF COIL DESIGN ON DELIVERY OF FOCAL MAGNETIC STIMULATION - TECHNICAL CONSIDERATIONS [J].
COHEN, LG ;
ROTH, BJ ;
NILSSON, J ;
DANG, N ;
PANIZZA, M ;
BANDINELLI, S ;
FRIAUF, W ;
HALLETT, M .
ELECTROENCEPHALOGRAPHY AND CLINICAL NEUROPHYSIOLOGY, 1990, 75 (04) :350-357
[28]  
Cracco RQ, 1999, EEG CL N SU, V50, P129
[29]   Designing transcranial magnetic stimulation systems [J].
Davey, K ;
Riehl, M .
IEEE TRANSACTIONS ON MAGNETICS, 2005, 41 (03) :1142-1148
[30]   Suppressing the surface field during transcranial magnetic stimulation [J].
Davey, KR ;
Riehl, M .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2006, 53 (02) :190-194