Enhanced Heat Transfer and Thermal Dose Using Magnetic Nanoparticles During HIFU Thermal Ablation—An In-Vitro Study

Seyed Ahmad Reza Dibaji, Marwan F. Al-Rjoub, M. Myers, R. Banerjee
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引用次数: 31

Abstract

Avoiding collateral damage to healthy tissues during the high intensity focused ultrasound (HIFU) ablation of malignant tumors is one of the major challenges for effective thermal therapy. Such collateral damage can originate out of the need for using higher acoustic powers to treat deep seated or highly vascularized tumors. The objective of this study is to assess the utility of using magnetic nanoparticles (mNPs) during HIFU procedures to locally enhance heating at low powers, thereby reducing the likelihood of collateral thermal damage and undesired destruction due to cavitation. Tissue phantoms with 0% (control), 1% and 3% mNPs concentrations by volume were fabricated. Each tissue phantom was embedded with four thermocouples (TCs) and sonicated using transducer acoustic powers of 5.15 W, 9.17 W, and 14.26 W. The temperature profiles during the heating and cooling periods were recorded for each embedded TC. The measured transient temperature profiles were used for thermal-dose calculations. The increase in the concentration of mNPs in the tissue phantoms, from 0% to 3%, resulted in the rise in the peak temperatures for all the TCs for each acoustic power. The thermal dose also increased with the rise in the concentration of mNPs in the tissue phantoms. For the highest applied acoustic power (14.26 W), the peak temperature at TC 1 (T1) in tissue phantoms with 1% and 3% mNPs concentrations increased (with respect to tissue phantom with 0% (control) mNPs concentration) by 1.59 and 2.09 , respectively. For an acoustic power of 14.26 W, the time required to achieve cellular necrosis as defined by a 240 equivalent min thermal dose was approximately 75 s in the absence of mNPs, 14 s for the 1% concentration, and 8 s for the 3% concentration. Magnetic nanoparticles have the potential to significantly reduce the time for HIFU thermal-ablation procedures. They can also decrease the likelihood of collateral damage by the propagating beam in HIFU procedures by reducing the intensity required to achieve cellular necrosis. [DOI: 10.1115/1.4027340]
在HIFU热消融过程中使用磁性纳米颗粒增强热传递和热剂量-一项体外研究
在高强度聚焦超声(HIFU)消融恶性肿瘤过程中避免对健康组织的附带损伤是有效热疗的主要挑战之一。这种附带损伤可能源于需要使用更高的声功率来治疗深部或高度血管化的肿瘤。本研究的目的是评估在HIFU过程中使用磁性纳米颗粒(mNPs)在低功率下局部增强加热的效用,从而减少由于空化引起的附带热损伤和不希望的破坏的可能性。制备体积mNPs浓度分别为0%(对照)、1%和3%的组织模型。每个组织模体嵌入4个热电偶(tc),并使用换能器的声功率分别为5.15 W、9.17 W和14.26 W进行超声处理。记录每个嵌入式TC在加热和冷却期间的温度分布。测量的瞬态温度分布用于热剂量计算。组织模态中mNPs的浓度从0%增加到3%,导致每种声功率下所有TCs的峰值温度升高。热剂量也随组织幻影中mNPs浓度的升高而增加。在最大声功率(14.26 W)下,mNPs浓度为1%和3%的组织模体在TC 1 (T1)时的峰值温度(相对于mNPs浓度为0%的组织模体)分别提高了1.59和2.09。对于14.26 W的声功率,以240等效min热剂量定义的细胞坏死所需时间在不存在mNPs时约为75 s,在1%浓度下为14 s,在3%浓度下为8 s。磁性纳米颗粒具有显著缩短HIFU热消融时间的潜力。它们还可以通过降低达到细胞坏死所需的强度来降低HIFU手术中传播束附带损伤的可能性。(DOI: 10.1115/1.4027340)
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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