Non-invasive transcranial ultrasound stimulation for neuromodulation

被引:160
作者
Darmani, G. [1 ]
Bergmann, T. O. [2 ,3 ]
Pauly, K. Butts [4 ,5 ,6 ]
Caskey, C. F. [7 ,8 ]
de Lecea, L. [9 ]
Fomenko, A. [1 ]
Fouragnan, E. [10 ]
Legon, W. [11 ]
Murphy, K. R. [9 ]
Nandi, T. [2 ]
Phipps, M. A. [7 ,8 ]
Pinton, G. [12 ,13 ]
Ramezanpour, H. [14 ]
Sallet, J. [15 ,16 ]
Yaakub, S. N. [10 ]
Yoo, S. S. [17 ]
Chen, R. [1 ,18 ]
机构
[1] Univ Hlth Network, Krembil Res Inst, Toronto, ON, Canada
[2] Johannes Gutenberg Univ Mainz, Neuroimaging Ctr NIC, Med Ctr, Focus Program Translat Neurosci FTN, Mainz, Germany
[3] Leibniz Inst Resilience Res, Mainz, Germany
[4] Stanford Univ, Dept Bioengn, Stanford, CA 94305 USA
[5] Stanford Univ, Dept Elect Engn, Stanford, CA 94305 USA
[6] Stanford Univ, Dept Radiol, Stanford, CA 94305 USA
[7] Vanderbilt Univ, Inst Imaging Sci, 221 Kirkland Hall, Nashville, TN 37235 USA
[8] Vanderbilt Univ, Med Ctr, Dept Radiol & Radiol Sci, Nashville, TN 37232 USA
[9] Stanford Univ, Dept Psychiat & Behav Sci, Stanford, CA 94305 USA
[10] Univ Plymouth, Sch Psychol, Plymouth, Devon, England
[11] Univ Virginia, Sch Med, Dept Neurol Surg, Charlottesville, VA 22908 USA
[12] Univ N Carolina, Joint Dept Biomed Engn, Chapel Hill, NC 27515 USA
[13] North Carolina State Univ, Chapel Hill, NC USA
[14] York Univ, Ctr Vis Res, Toronto, ON, Canada
[15] Univ Lyon, Univ Lyon 1, INSERM, Stem Cell & Brain Res Inst, Bron, France
[16] Univ Oxford, Wellcome Ctr Integrat Neuroimaging, Dept Expt Psychol, Oxford, England
[17] Harvard Med Sch, Brigham & Womens Hosp, Dept Radiol, Boston, MA 02115 USA
[18] Univ Toronto, Dept Med, Div Neurol, Toronto, ON, Canada
基金
英国医学研究理事会;
关键词
Transcranial ultrasound stimulation; Neuromodulation; Plasticity; Non-invasive brain stimulation; BLOOD-BRAIN-BARRIER; HUMAN MOTOR CORTEX; FOCUSED ULTRASOUND; RADIATION FORCE; MAGNETIC STIMULATION; THALAMIC-STIMULATION; FREQUENCY-DEPENDENCE; SYNAPTIC PLASTICITY; SENSITIVE NEURONS; PULSED ULTRASOUND;
D O I
10.1016/j.clinph.2021.12.010
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Transcranial ultrasound stimulation (TUS) holds great potential as a tool to alter neural circuits non-invasively in both animals and humans. In contrast to established non-invasive brain stimulation methods, ultrasonic waves can be focused on both cortical and deep brain targets with the unprecedented spatial resolution as small as a few cubic millimeters. This focusing allows exclusive targeting of small subcortical structures, previously accessible only by invasive deep brain stimulation devices. The neuromodulatory effects of TUS are likely derived from the kinetic interaction of the ultrasound waves with neuronal membranes and their constitutive mechanosensitive ion channels, to produce short term and long-lasting changes in neuronal excitability and spontaneous firing rate. After decades of mechanistic and safety investigation, the technique has finally come of age, and an increasing number of human TUS studies are expected. Given its excellent compatibility with non-invasive brain mapping techniques, such as electroencephalography (EEG) and functional magnetic resonance imaging (fMRI), as well as neuromodulatory techniques, such as transcranial magnetic stimulation (TMS), systemic TUS effects can readily be assessed in both basic and clinical research. In this review, we present the fundamentals of TUS for a broader audience. We provide up-to-date information on the physical and neurophysiological mechanisms of TUS, available readouts for its neural and behavioral effects, insights gained from animal models and human studies, potential clinical applications, and safety considerations. Moreover, we discuss the indirect effects of TUS on the nervous system through peripheral co-stimulation and how these confounding factors can be mitigated by proper control conditions. (C) 2021 International Federation of Clinical Neurophysiology. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:51 / 73
页数:23
相关论文
共 229 条
[1]   Primary cold-sensitive neurons in acutely dissociated cells of rat hypothalamus [J].
Abe, J ;
Okazawa, M ;
Adachi, R ;
Matsumura, K ;
Kobayashi, S .
NEUROSCIENCE LETTERS, 2003, 342 (1-2) :29-32
[2]   Simulation of transcranial magnetic stimulation in head model with morphologically-realistic cortical neurons [J].
Aberra, Aman S. ;
Wang, Boshuo ;
Grill, Warren M. ;
Peterchev, Angel V. .
BRAIN STIMULATION, 2020, 13 (01) :175-189
[3]   Effects of transcranial focused ultrasound on human primary motor cortex using 7T fMRI: a pilot study [J].
Ai, Leo ;
Bansal, Priya ;
Mueller, Jerel K. ;
Legon, Wynn .
BMC NEUROSCIENCE, 2018, 19
[4]  
Ai L, 2016, IEEE ENG MED BIO, P1758, DOI 10.1109/EMBC.2016.7591057
[5]  
[Anonymous], 2017, MARKETING CLEARANCE
[6]  
[Anonymous], 2015, FDN FOC ULTR GLIOBL
[7]   ARFI-prepared MRgHIFU in liver: Simultaneous mapping of ARFI-displacement and temperature elevation, using a fast GRE-EPI sequence [J].
Auboiroux, Vincent ;
Viallon, Magalie ;
Roland, Joerg ;
Hyacinthe, Jean-Noel ;
Petrusca, Lorena ;
Morel, Denis R. ;
Goget, Thomas ;
Terraz, Sylvain ;
Gross, Patrick ;
Becker, Christoph D. ;
Salomir, Rares .
MAGNETIC RESONANCE IN MEDICINE, 2012, 68 (03) :932-946
[8]   Experimental demonstration of noninvasive transskull adaptive focusing based on prior computed tomography scans [J].
Aubry, JF ;
Tanter, M ;
Pernot, M ;
Thomas, JL ;
Fink, M .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2003, 113 (01) :84-93
[9]   Modulation of GABA and resting state functional connectivity by transcranial direct current stimulation [J].
Bachtiar, Velicia ;
Near, Jamie ;
Johansen-Berg, Heidi ;
Stagg, Charlotte J. .
ELIFE, 2015, 4
[10]   Focused ultrasound modifications of neural circuit activity in a mammalian brain [J].
Bachtold, MR ;
Rinaldi, PC ;
Jones, JP ;
Reines, F ;
Price, LR .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1998, 24 (04) :557-565