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关于缩短 HIFU 消融治疗时间的数值研究及其实验验证。

Numerical studies on shortening the duration of HIFU ablation therapy and their experimental validation.

机构信息

Institute of Fundamental Technological Research, Polish Academy of Sciences, Pawińskiego 5B, 02-106 Warsaw, Poland.

Institute of Fundamental Technological Research, Polish Academy of Sciences, Pawińskiego 5B, 02-106 Warsaw, Poland.

出版信息

Ultrasonics. 2024 Aug;142:107371. doi: 10.1016/j.ultras.2024.107371. Epub 2024 Jun 4.

Abstract

High Intensity Focused Ultrasound (HIFU) is used in clinical practice for thermal ablation of malignant and benign solid tumors located in various organs. One of the reason limiting the wider use of this technology is the long treatment time resulting from i.a. the large difference between the size of the focal volume of the heating beam and the size of the tumor. Therefore, the treatment of large tumors requires scanning their volume with a sequence of single heating beams, the focus of which is moved in the focal plane along a specific trajectory with specific time and distance interval between sonications. To avoid an undesirable increase in the temperature of healthy tissues surrounding the tumor during scanning, the acoustic power and exposure time of each HIFU beam as well as the time intervals between sonications should be selected in such a way as to cover the entire volume of the tumor with necrosis as quickly as possible. This would reduce the costs of treatment. The aim of this study was to quantitatively evaluate the hypothesis that selecting the average acoustic power and exposure time for each individual heating beam, as well as the temporal intervals between sonications, can significantly shorten treatment time. Using 3D numerical simulations, the dependence of the duration of treatment of a tumor with a diameter of 5 mm or 9 mm (requiring multiple exposure to the HIFU beam) on the sonication parameters (acoustic power, exposure time) of each single beam capable of delivering the threshold thermal dose (CEM = 240 min) to the treated tissue volume was examined. The treatment duration was determined as the sum of exposure times to individual beams and time intervals between sonications. The tumor was located inside the ex vivo tissue sample at a depth of 12.6 mm. The thickness of the water layer between the HIFU transducer and the tissue was 50 mm. The sonication and scanning parameters selected using the developed algorithm shortened the duration of the ablation procedure by almost 14 times for a 5-mm tumor and 20 times for a 9-mm tumor compared to the duration of the same ablation plan when a HIFU beam was used of a constant acoustic power, constant exposure time (3 s) and constant long time intervals (120 s) between sonications. Results of calculations of the location and size of the necrotic lesion formed were experimentally verified on ex vivo pork loin samples, showing good agreement between them. In this way, it was proven that the proper selection of sonication and scanning parameters for each HIFU beam allows to significantly shorten the time of HIFU therapy.

摘要

高强度聚焦超声(HIFU)在临床实践中用于热消融位于不同器官的恶性和良性实体肿瘤。限制该技术更广泛应用的原因之一是治疗时间长,这主要是由于加热光束的焦斑体积与肿瘤体积之间存在较大差异。因此,治疗大肿瘤需要用一系列单个加热光束扫描其体积,这些光束的焦点在焦平面内沿着特定轨迹移动,在每次超声之间有特定的时间和距离间隔。为了避免在扫描过程中肿瘤周围健康组织的温度升高,应选择每个 HIFU 光束的声功率和照射时间以及每次超声之间的时间间隔,以便尽快用坏死覆盖整个肿瘤体积。这将降低治疗成本。本研究的目的是定量评估以下假设:选择每个单独加热光束的平均声功率和照射时间以及每次超声之间的时间间隔,可以显著缩短治疗时间。使用 3D 数值模拟,研究了直径为 5 毫米或 9 毫米的肿瘤(需要多次暴露于 HIFU 光束)的治疗时间与单个能够将热剂量阈值(CEM=240 分钟)输送到治疗组织体积的加热光束的声功率和照射时间之间的关系。治疗持续时间被确定为单个光束的照射时间和每次超声之间的时间间隔的总和。肿瘤位于离体组织样本内部,深度为 12.6 毫米。HIFU 换能器和组织之间的水层厚度为 50 毫米。使用开发的算法选择的超声和扫描参数将 5 毫米肿瘤的消融过程持续时间缩短了近 14 倍,将 9 毫米肿瘤的消融过程持续时间缩短了 20 倍,与使用恒定声功率、恒定照射时间(3 秒)和恒定长时间间隔(120 秒)的相同消融计划相比,超声和扫描参数缩短了消融过程的持续时间。在离体猪里脊肉样本上进行了坏死病变形成的位置和大小的计算结果的实验验证,结果吻合良好。通过这种方式,证明了为每个 HIFU 光束正确选择超声和扫描参数可以显著缩短 HIFU 治疗时间。

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