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Microbubble-enhanced transcranial MR-guided focused ultrasound brain hyperthermia: heating mechanism investigation using finite element method
2024
发表期刊ULTRASONICS SONOCHEMISTRY (IF:8.7[JCR-2023],7.9[5-Year])
ISSN1350-4177
EISSN1873-2828
卷号107
发表状态已发表
DOI10.1016/j.ultsonch.2024.106889
摘要

Recently, our group developed a synergistic brain drug delivery method to achieve simultaneous transcranial hyperthermia and localized blood–brain barrier opening via MR-guided focused ultrasound (MRgFUS). In a rodent model, we demonstrated that the ultrasound power required for transcranial MRgFUS hyperthermia was significantly reduced by injecting microbubbles (MBs). However, the specific mechanisms underlying the power reduction caused by MBs remain unclear. The present study aims to elucidate the mechanisms of MB-enhanced transcranial MRgFUS hyperthermia through numerical studies using the finite element method. The microbubble acoustic emission (MAE) and the viscous dissipation (VD) were hypothesized to be the specific mechanisms. Acoustic wave propagation was used to model the FUS propagation in the brain tissue, and a bubble dynamics equation for describing the dynamics of MBs with small shell thickness was used to model the MB oscillation under FUS exposures. A modified bioheat transfer equation was used to model the temperature in the rodent brain with different heat sources. A theoretical model was used to estimate the bubble shell's surface tension, elasticity, and viscosity losses. The simulation reveals that MAE and VD caused a 40.5% and 52.3% additional temperature rise, respectively. Compared with FUS only, MBs caused a 64.0% temperature increase, which is consistent with our previous animal experiments. Our investigation showed that MAE and VD are the main mechanisms of MB-enhanced transcranial MRgFUS hyperthermia. © 2024 The Authors

关键词Acoustic emissions Acoustic wave propagation Bubbles (in fluids) Drug delivery Numerical methods Oscillating flow Ultrasonics Acoustic-emissions Brain hyperthermia Bubble dynamics Focused ultrasound Heating mechanisms Microbubbles MR-guided focused ultrasound Transcranial Transcranial hyperthermia Viscous dissipation
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收录类别EI ; SCI
语种英语
资助项目Natural Science Foundation of Shanghai[23ZR1442000] ; Shanghai Tech University[2021F0209-000-09]
WOS研究方向Acoustics ; Chemistry
WOS类目Acoustics ; Chemistry, Multidisciplinary
WOS记录号WOS:001263802500001
出版者Elsevier B.V.
EI入藏号20241916042210
EI主题词Finite element method
EI分类号631.1 Fluid Flow, General ; 631.1.2 Gas Dynamics ; 751.1 Acoustic Waves ; 751.2 Acoustic Properties of Materials ; 753.1 Ultrasonic Waves ; 921.6 Numerical Methods
原始文献类型Article in Press
文献类型期刊论文
条目标识符https://kms.shanghaitech.edu.cn/handle/2MSLDSTB/375702
专题生物医学工程学院
信息科学与技术学院_博士生
生物医学工程学院_PI研究组_程冰冰组
生物医学工程学院_硕士生
生物医学工程学院_博士生
通讯作者Cheng, Bingbing
作者单位
1.Translational Research in Ultrasound Theranostics Laboratory, School of Biomedical Engineering, ShanghaiTech University, Shanghai, China;
2.State Key Laboratory of Advanced Medical Materials and Devices, ShanghaiTech University, Shanghai, China;
3.Department of Radiology, University of Calgary, Calgary, Canada;
4.Department of Clinical Neurosciences, University of Calgary, Calgary, Canada;
5.Hotchkiss Brain Institute, University of Calgary, Calgary, Canada
第一作者单位生物医学工程学院;  上海科技大学
通讯作者单位生物医学工程学院;  上海科技大学
第一作者的第一单位生物医学工程学院
推荐引用方式
GB/T 7714
Xu, Zhouyang,Piao, Xiangkun,Wang, Mingyu,et al. Microbubble-enhanced transcranial MR-guided focused ultrasound brain hyperthermia: heating mechanism investigation using finite element method[J]. ULTRASONICS SONOCHEMISTRY,2024,107.
APA Xu, Zhouyang,Piao, Xiangkun,Wang, Mingyu,Pichardo, Samuel,&Cheng, Bingbing.(2024).Microbubble-enhanced transcranial MR-guided focused ultrasound brain hyperthermia: heating mechanism investigation using finite element method.ULTRASONICS SONOCHEMISTRY,107.
MLA Xu, Zhouyang,et al."Microbubble-enhanced transcranial MR-guided focused ultrasound brain hyperthermia: heating mechanism investigation using finite element method".ULTRASONICS SONOCHEMISTRY 107(2024).
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