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Multi-parametric monitoring and assessment of High Intensity Focused Ultrasound (HIFU) boiling by Harmonic Motion Imaging for Focused Ultrasound (HMIFU): An ex vivo feasibility study

机译:高强度聚焦超声(HIFU)沸腾的谐波运动成像(HMIFU)的多参数监测和评估:离体可行性研究

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摘要

Harmonic Motion Imaging for Focused Ultrasound (HMIFU) is a recently developed high-intensity focused ultrasound (HIFU) treatment monitoring method with feasibilities demonstrated in vitro and in vivo. Here, a multi-parametric study is performed to investigate both elastic and acoustics-independent viscoelastic tissue changes using the Harmonic Motion Imaging (HMI) displacement, axial compressive strain and change in relative phase-shift during high energy HIFU treatment with tissue boiling. Forty three (n=43) thermal lesions were formed in ex vivo canine liver specimens (n=28). Two dimensional (2D) transverse HMI displacement maps were also obtained before and after lesion formation. The same method was repeated in 10-s, 20-s and 30-s HIFU durations at three different acoustic powers of 8, 10, and 11W, which were selected and verified as treatment parameters capable of inducing boiling using both thermocouple and Passive Cavitation Detection (PCD) measurements. Although a steady decrease in the displacement, compressive strain, and relative change in the focal phase shift (Δφ) were obtained in numerous cases, indicating an overall increase in relative stiffness, the study outcomes also showed that during boiling, a reverse lesion-to-background displacement contrast was detected, indicating potential change in tissue absorption, geometrical change and/or, mechanical gelatification or pulverization. Following treatment, corresponding 2D HMI displacement images of the thermal lesions also mapped consistent discrepancy in the lesion-to-background displacement contrast. Despite unpredictable changes in acoustic properties with boiling, the relative change in phase shift showed a consistent decrease, indicating its robustness to monitor biomechanical properties independent of the acoustic property change throughout the HIFU treatment. In addition, the 2D HMI displacement images confirmed and indicated the increase in the thermal lesion size with treatment duration, which was validated against pathology. In conclusion, multi-parametric HMIFU was shown capable of monitoring and mapping tissue viscoelastic response changes during and after HIFU boiling, some of which were independent of the acoustic parameter changes.
机译:聚焦超声谐波运动成像(HMIFU)是最近开发的高强度聚焦超声(HIFU)治疗监测方法,具有在体外和体内证明的可行性。在这里,进行了多参数研究,以研究在使用组织沸腾的高能HIFU治疗过程中使用谐波运动成像(HMI)位移,轴向压缩应变和相对相移的变化来研究弹性和声学独立的粘弹性组织的变化。在离体犬肝标本中形成了四十三(n = 43)个热损伤(n = 28)。在病变形成之前和之后,还获得了二维(2D)横向HMI位移图。在8、10和11W的三种不同声功率下,在10s,20s和30s HIFU持续时间中重复了相同的方法,选择并验证了它们是能够使用热电偶和被动气蚀技术诱导沸腾的处理参数检测(PCD)测量。尽管在许多情况下都获得了位移,压缩应变和焦点相移(Δφ)相对变化的稳步下降,表明相对刚度总体上有所提高,但研究结果还表明,在煮沸过程中, -检测到背景位移对比,表明组织吸收,几何变化和/或机械凝胶化或粉碎的潜在变化。治疗后,热损伤的相应2D HMI位移图像还映射了病灶与背景位移对比中的一致差异。尽管煮沸后声学特性发生不可预测的变化,但相移的相对变化仍显示出一致的下降,表明其在整个HIFU处理过程中独立于声学特性变化而监测生物力学特性的鲁棒性。此外,二维HMI位移图像证实并指示了热损伤大小随治疗持续时间的增加,这已针对病理进行了验证。总之,显示出多参数HMIFU能够监测和绘制HIFU沸腾期间和之后的组织粘弹性响应变化,其中一些与声学参数变化无关。

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