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Variations of bubble cavitation and temperature elevation during lesion formation by high-intensity focused ultrasound

机译:高强度聚焦超声在病变形成过程中气泡空化和温度升高的变化

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摘要

High-intensity focused ultrasound (HIFU) is emerging as an effective therapeutic modality in both thermal ablations for solid tumor/cancer and soft-tissue fragmentation. Mechanical and thermal effects, which play an important role in the HIFU treatment simultaneously, are dependent on the operating parameters and may vary with the progress of therapy. Mechanical erosion in the shape of a "squid," a "dumbbell" lesion with both mechanical and thermal lesions, or a "tadpole" lesion with mechanical erosion at the center and thermal necrosis on the boundary in the transparent gel phantom could be produced correspondingly with the pulse duration of 5-30 ms, which is much longer than histotripsy burst but shorter than the time for tissue boiling, and pulse repetition frequency (PRF) of 0.2-5 Hz. Meanwhile, variations of bubble cavitation (both inertial and stable cavitation) and temperature elevation in the focal region (i.e., z = -2.5, 0, and 2.5 mm) were measured by passive cavitation detection (PCD) and thermocouples during the therapeutic procedure, respectively. Stable cavitation increased with the pulse duration, PRF, and the number of pulses delivered. However, inertial cavitation was found to increase initially and then decrease with long pulse duration and high PRF. Temperature in the pre-focal region is always higher than those at the focal and post-focal position in all tests. Great variations of PCD signals and temperature elevation are due to the generation and persistence of large bubble, which is resistant to collapse and occurs with the increase of pulse duration and PRF. Similar lesion pattern and variations were also observed in ex vivo porcine kidneys. Hyperechoes in the B-mode ultrasound image were comparable to the shape and size of lesions in the dissected tissue. Thermal lesion volume increased with the increase of pulse duration and PRF, but mechanical erosion reached its maximum volume with the pulse duration of 20 ms and PRF of 1 Hz. Altogether, bubble cavitation and thermal field vary with the progress of HIFU treatment with different sonication parameters, which provide insights into the interaction of ultrasound burst with the induced bubbles for both soft tissue fractionation and enhancement in thermal accumulation. Appropriate synergy and monitoring of mechanical and thermal effects would broaden the HIFU application and enhance its efficiency as well as safety.
机译:高强度聚焦超声(HIFU)在热消融中已成为一种有效的治疗方式,可用于实体瘤/癌症和软组织破碎。同时在HIFU治疗中起重要作用的机械和热效应取决于操作参数,并可能随着治疗的进展而变化。可以相应地产生呈“鱿鱼”状,机械性和热性损害的“哑铃型”病变或中心具有机械性侵蚀和边界处的热坏死的“ ta”状的机械侵蚀。脉冲持续时间为5到30毫秒,比组织碎裂长得多,但比组织沸腾的时间短,脉冲重复频率(PRF)为0.2-5 Hz。同时,在治疗过程中,通过被动气穴检测(PCD)和热电偶测量了气泡气穴(惯性和稳定气穴)和焦点区域的温度升高(即z = -2.5、0和2.5 mm)的变化,分别。稳定的空化随着脉冲持续时间,PRF和传送的脉冲数而增加。然而,发现惯性空化起先增加,然后随着长脉冲持续时间和高PRF而减少。在所有测试中,聚焦前区域的温度始终高于聚焦和聚焦后位置的温度。 PCD信号和温度升高的巨大变化归因于大气泡的产生和持久性,该气泡可抵抗崩溃并随着脉冲持续时间和PRF的增加而发生。在离体猪肾脏中也观察到相似的病变模式和变异。 B型超声图像中的高回声与解剖组织中病变的形状和大小相当。热损伤体积随脉冲持续时间和PRF的增加而增加,但机械侵蚀达到最大体积,脉冲持续时间为20 ms,PRF为1 Hz。总而言之,气泡空化和热场随采用不同超声处理参数的HIFU治疗的进展而变化,这为软组织分离和增强热蓄积提供了超声爆裂与诱导气泡相互作用的见解。适当的协同作用以及对机械和热效应的监控将扩大HIFU的应用范围,并提高其效率和安全性。

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