Department of Physics and Astronomy, University of Utah , Salt Lake City, Utah, USA.
Int J Hyperthermia. 2011;27(5):465-81. doi: 10.3109/02656736.2011.564597.
This study evaluates the hypothesis that optimising the path of a high intensity focused ultrasound (HIFU) treatment's N focal zone heating pulses can significantly reduce treatment time, and identifies the underlying bio-thermal principles.
Thirty-one scanning paths were investigated using 3D simulations, with a minimum thermal dose delivered to every tumour position. Treatment time was calculated as the sum of the N, individually optimised heating and cooling periods. Tumours were superficial (skin to tumour distance ranging from 1.3 to 2.5 cm), but always deep enough so that the pre-tumour normal tissue was routinely heated to its constraint temperature (range: 42-45°C). Properties were uniform and constant, and a range of blood perfusion and phased array powers were studied.
The best paths significantly reduced treatment times, with the largest gains occurring when (1) temperature superposition inside the tumour was maximised by successively heating the focal zone positions located in a 'stack' along the transducer's axis, and (2) the focal zone was moved laterally to an optimised location and another stack was applied. Stacking takes advantage of the focal zone's elongated shape, which produces axial temperature superposition within the tumour. Reduced tumour heating times also reduced energy deposition in the normal tissues, thus reducing or eliminating the need for inter-pulse cooling.
HIFU treatment times can be significantly reduced by taking advantage of axial temperature superposition in tumours. Further reductions are obtained by correct choice of the transverse scan path.
本研究评估了以下假设,即优化高强度聚焦超声(HIFU)治疗的 N 个焦点加热脉冲的路径可以显著缩短治疗时间,并确定了潜在的生物热学原理。
使用 3D 模拟研究了 31 条扫描路径,每条路径均保证将最小热剂量传递至每个肿瘤位置。治疗时间计算为 N 个单独优化的加热和冷却周期的总和。肿瘤为浅表(皮肤到肿瘤的距离为 1.3 至 2.5cm),但深度足以使肿瘤前正常组织常规加热至约束温度(范围:42-45°C)。组织性质均匀且恒定,并研究了不同的血流灌注和相控阵功率。
最佳路径显著缩短了治疗时间,当(1)通过沿换能器轴依次加热焦点位置所在的“堆叠”来最大化肿瘤内的温度叠加,和(2)将焦点侧向移动到优化的位置并施加另一个堆叠时,最大程度地缩短了治疗时间。堆叠利用了焦点的拉长形状,从而在肿瘤内产生轴向温度叠加。肿瘤加热时间的缩短还减少了正常组织中的能量沉积,从而减少或消除了对脉冲间冷却的需求。
通过利用肿瘤内的轴向温度叠加,可以显著缩短 HIFU 治疗时间。通过正确选择横向扫描路径,可以进一步缩短治疗时间。