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Anatomical-based model for simulation of HIFU-induced lesions in atherosclerotic plaques

机译:基于解剖模型的HIFU诱导的动脉粥样硬化斑块病变的模拟

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摘要

Purpose: The aim of this study was to simulate the effect of high intensity focused ultrasound (HIFU) in non-homogenous medium for targeting atherosclerotic plaques in vivo. Materials and methods: A finite-difference time-domain heterogeneous model for acoustic and thermal tissue response in the treatment region was derived from ultrasound images of the treatment region. A 3.5 MHz dual mode ultrasound array suitable for targeting peripheral vessels was used. The array has a lateral and elevation focus at 40 mm with fenestration in its centre through which a 7.5 MHz diagnostic transducer can be placed. Two cases were simulated where seven adjacent HIFU shots (similar to 5000 W/cm(2), 2-s exposure time) were targeted on the plaque tissue within the femoral artery. The transient bioheat equation with a convective term to account for blood flow was used to predict the thermal dose. The results of the simulation model were then validated against the histology data. Results: The simulation model predicted the HIFU-induced damage for both cases, and correlated well with the histology data. For the first case thermal damage was detected within the targeted plaque, while for the second case thermal damage was detected in the pre-focal region. Conclusion: The results suggest that a realistic, image-based acoustic and thermal model of the treatment region is capable of predicting the extent of thermal damage to target plaque tissue. The model considered the effect of the wall thickness of large arteries and the heat-sink effect of flowing blood. The model is used for predicting the size and pattern of HIFU damage in vivo.
机译:目的:本研究的目的是模拟高强度聚焦超声(HIFU)在非均质培养基中体内靶向动脉粥样硬化斑块的作用。材料和方法:从治疗区域的超声图像中得出治疗区域内声学和热组织反应的有限差分时域异质模型。使用适用于靶向外周血管的3.5 MHz双模超声阵列。该阵列在40 mm处有侧向和仰角焦点,其中心有开孔,可以通过它放置7.5 MHz诊断换能器。模拟了两个案例,其中七个相邻的HIFU注射(类似于5000 W / cm(2),暴露时间为2 s)对准了股动脉内的斑块组织。具有对流项以解释血流的瞬态生物热方程用于预测热剂量。然后针对组织学数据验证仿真模型的结果。结果:仿真模型预测了两种情况下HIFU引起的损伤,并与组织学数据良好相关。对于第一种情况,在目标斑块内检测到热损伤,而对于第二种情况,在焦点前区域检测到热损伤。结论:结果表明治疗区域的基于图像的逼真的声学和热模型能够预测对目标斑块组织的热损伤程度。该模型考虑了大动脉壁厚的影响和血液流动的散热效果。该模型用于预测体内HIFU损伤的大小和模式。

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