Numerical investigation of the energy distribution of Low-intensity transcranial focused ultrasound neuromodulation for hippocampus

被引:8
|
作者
Huang, Yi [1 ]
Wen, Peng [1 ]
Song, Bo [1 ]
Li, Yan [2 ]
机构
[1] Univ Southern Queensland, Sch Engn, Toowoomba, Qld 4350, Australia
[2] Univ Southern Queensland, Sch Math Phys & Comp, Toowoomba, Qld 4350, Australia
关键词
Ultrasound Numerical Simulation; Single-element Focused Ultrasound (SEFT); Neuromodulation; Deep Brain Stimulation; NONINVASIVE BRAIN-STIMULATION; ANISOTROPIC CONDUCTIVITY; PHASED-ARRAY; MOUSE-BRAIN; MRI; BLOOD; NEUROSTIMULATION; DELIVERY; THERAPY; SYSTEM;
D O I
10.1016/j.ultras.2022.106724
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Objective: Ultrasonic neuromodulation as a safe and non-invasive brain stimulation method that delivers a low-intensity, focused ultrasound to nervous system tissue in a targeted area of the brain. The objective of this study is to numerically investigate the ultrasound wave propagation and the energy distribution within the brain tissues using customized single element focused ultrasound transducers (SEFT), targeting the hippocampus.Methods: A high resolution detailed human head model with seven tissue types was constructed from magnetic resonance imaging (MRI). A full-wave finite-difference time-domain simulation platform, Sim4life, was then used to simulate a 3D non-linear ultrasound wave equation to the specific region of interest, the hippocampus. Three customized SEFT were used to test the effect of transducer positions, and another customized transducer was used to compare the sensitivity effect on heterogeneous and homogeneous brain models. Finally, the sensitivity and performance of low intensity focusing ultrasound stimulation were evaluated.Results: An optimized application of SEFT was customized to deliver 100 W/m(2) intensity of energy deposition at the hippocampus region. About 85.65% of the generated volume beam was delivered to the targeted hippo-campus region and the beam overlap parameter was affected by different transducer positions. Deflection angle changes of SEFT at the range of +/- 5% did not have a significant effect on energy delivery and position displacement. Only 0.5% of peak pressure change was observed between heterogeneous and homogeneous brain models. The sensitivity analysis also showed that the sound speed is the most influential acoustic parameter. Significance: This study demonstrated that ultrasound neuromodulation targeting the depth brain tissue of the hippocampus could be a potential and promising alternative method to some non-acoustic brain stimulation modalities. In the numerical study of ultrasound brain stimulations, ultrasound parameters and the brain model need to be properly determined to simulate the ultrasonic neuromodulations.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] A review of functional neuromodulation in humans using low-intensity transcranial focused ultrasound
    Lee, Kyuheon
    Park, Tae Young
    Lee, Wonhye
    Kim, Hyungmin
    [J]. Biomedical Engineering Letters, 2024, 14 (03) : 407 - 438
  • [2] A review of low-intensity focused ultrasound for neuromodulation
    Baek H.
    Pahk K.J.
    Kim H.
    [J]. Kim, Hyungmin (hk@kist.re.kr), 2017, Springer Verlag (07) : 135 - 142
  • [3] Numerical and experimental evaluation of low-intensity transcranial focused ultrasound wave propagation using human skulls for brain neuromodulation
    Chen, Mengyue
    Peng, Chang
    Wu, Huaiyu
    Huang, Chih-Chung
    Kim, Taewon
    Traylor, Zachary
    Muller, Marie
    Chhatbar, Pratik Y.
    Nam, Chang S.
    Feng, Wuwei
    Jiang, Xiaoning
    [J]. MEDICAL PHYSICS, 2023, 50 (01) : 38 - 49
  • [4] Noninvasive neuromodulation and thalamic mapping with low-intensity focused ultrasound
    Dallapiazza, Robert F.
    Timbie, Kelsie F.
    Holmberg, Stephen
    Gatesman, Jeremy
    Lopes, M. Beatriz
    Price, Richard J.
    Miller, G. Wilson
    Elias, W. Jeffrey
    [J]. JOURNAL OF NEUROSURGERY, 2018, 128 (03) : 875 - 884
  • [5] EFFECTS OF LOW-INTENSITY TRANSCRANIAL FOCUSED ULTRASOUND NEUROMODULATION ON RESTING STATE ELECTROENCEPHALOGRAPHIC FRONTAL ALPHA ASYMMETRY
    Ziebell, Philipp
    Rodrigues, Johannes
    Forster, Andre
    Allen, John
    Hewig, Johannes
    [J]. PSYCHOPHYSIOLOGY, 2020, 57 : S27 - S27
  • [6] A Review of Low-Intensity Transcranial Focused Ultrasound for Clinical Applications
    Bystritsky A.
    Korb A.S.
    [J]. Current Behavioral Neuroscience Reports, 2015, 2 (2) : 60 - 66
  • [7] Noninvasive Brain Neuromodulation Based on Low-Intensity Focused Ultrasound Stimulation
    YI Yuan
    MA Zhi-tao
    WANG Li-fang
    LI Xiao-li
    [J]. Chinese Journal of Biomedical Engineering, 2017, 26 (04) : 139 - 145
  • [8] BEAMFORMING DESIGN FOR HIGH-RESOLUTION LOW-INTENSITY FOCUSED ULTRASOUND NEUROMODULATION
    Fan, Boqiang
    Goodman, Wayne
    Cho, Raymond Y.
    Sheth, Sameer A.
    Bouchard, Richard R.
    Aazhang, Behnaam
    [J]. 2020 IEEE INTERNATIONAL CONFERENCE ON ACOUSTICS, SPEECH, AND SIGNAL PROCESSING, 2020, : 906 - 910
  • [9] Neuromodulation with transcranial focused ultrasound
    Kubanek, Jan
    [J]. NEUROSURGICAL FOCUS, 2018, 44 (02)
  • [10] Use of Low-Intensity Transcranial Focused Ultrasound for Targeted Delivery of Exosomes to the Brain
    Lara, Jacqueline
    Haroon, Jon
    Flores, Linda
    McDonald, Marisa
    Mahdavi, Kennedy
    Venkatraman, Victoria
    Ngai, Hoi Wa
    Schafer, Samantha
    Schafer, Mark
    Hammad, Mohamed
    Nardi, Isaac
    Kuhn, Taylor
    Ross, Duncan
    Jordan, Sheldon
    Aboody, Karen S.
    [J]. MOLECULAR THERAPY, 2023, 31 (04) : 285 - 285